Magazine assembly for fastening tool
Summary by NHIP
Cam follower magazine assembly
The magazine assembly feeds fasteners through a hollow cavity using a follower with a cam device and a housing-coupled cam follower. Disengagement occurs solely from downward motion beyond a predetermined point, while engagement requires movement toward then away from the follower via a pivotable lever.
Claim Score by NHIP
Abstract
A magazine assembly for a fastening tool. The magazine assembly includes a feed mechanism having a fastener follower that includes a cam device. The feed mechanism also includes a cam follower which is employed to engage the cam device so that fasteners may be loaded into the magazine assembly. The cam follower alternately engages and disengages the cam device in response to movement of the fastener follower relative to the cam device. The magazine assembly also includes a clamp assembly for coupling the magazine assembly to the body of a fastening tool.

Term
Term ended
Expired 5 April 2022, 4.5 years ago.
- Priority
- Filed
- Granted
- Expired
- Today
25 claims: 3 independent, 22 dependent
- 1Broadest claimClaim Score 63, broad(NHIP)In a magazine assembly for holding and progressively dispensing a plurality of fasteners, a feed mechanism for feeding the fasteners through a hollow cavity in a magazine housing toward a dispensing end of the magazine housing, the feed mechanism comprising:a fastener follower that is configured to support the fasteners in the magazine housing, the fastener follower including a cam device;and a cam follower coupled to the magazine housing at an end opposite the dispensing end, the cam follower operable for alternately engaging and disengaging the cam device, the fastener follower being restrained from movement toward the dispensing end of the magazine housing when the cam follower is engaged to the cam device;wherein disengagement of the cam follower from the cam device occurs solely from downward motion of the fastener follower relative to the cam follower beyond a predetermined disengaging point.
- 11A magazine assembly for holding and progressively dispensing a plurality of fasteners, the magazine assembly comprising:a magazine housing having a hollow cavity that is configured to hold the fasteners, the magazine housing having a dispensing end;and a feed mechanism for selectively urging the fasteners toward the dispensing end, the feed mechanism having: a fastener follower for supporting the fasteners in the magazine housing, the fastener follower including a cam device;a biasing device for biasing the follower toward the dispensing end of the magazine assembly;an end cap structure that is coupled to an end of the magazine housing opposite the dispensing end;and a cam follower pivotably coupled to the end cap structure and movable between an engaged condition, wherein the cam follower is engaged to the cam device to inhibit movement of the fastener follower toward the dispensing end, and a disengaged condition, wherein movement of the fastener follower toward the dispensing end is not inhibited by the cam follower;wherein disengagement of the cam follower from the cam device occurs solely from downward motion of the fastener follower relative to the cam follower beyond a predetermined disengaging point;and wherein engagement of the cam follower to the cam device occurs via movement of the fastener follower toward the cam follower beyond a predetermined engaging point followed by movement of the fastener follower away from the cam follower.
- 20A fastening tool for holding a plurality of fasteners and selectively setting a first one of the fasteners into a workpiece, the fastening tool comprising:a fastening tool portion having a handle, a clamp mechanism, and a nose structure, the handle being configured to be gripped by an operator when using the fastening tool, the clamp mechanism being coupled to the handle and including a clamp pin with a head portion and a body portion, the clamp pin being movable between an engaged condition and a disengaged condition, the nose structure including a magazine flange;and a magazine assembly having an upper surface that is configured to abut a bottom surface of the magazine flange, the magazine assembly further including a magazine housing and a coupling bracket, the coupling bracket coupled to the magazine housing and including a slotted coupling aperture having a first portion, which is sized larger than the head portion of the clamp pin, a second portion, which is sized to engage the head portion, and a slotted portion interconnecting the first and second portions of the slotted coupling aperture, the slotted portion of the slotted coupling aperture being sized larger than the body portion of the clamp pin and smaller than the head portion of the clamp pin;the magazine assembly being positionable relative to the fastening tool portion in an uncoupled condition, wherein the magazine assembly is separated from the fastening tool portion;the magazine assembly being positionable relative to the fastening tool portion in a coupled condition, wherein the magazine assembly is fixed to the fastening tool portion such that the clamp pin is disposed in the second portion of the slotted coupling aperture and the clamp mechanism is positioned in the engaged position and generating a clamping force that is applied through the head portion of the clamp pin and against the coupling bracket to thereby secure the magazine assembly to the handle;the magazine assembly also being positionable relative to the fastening tool portion in a semi-coupled condition, wherein the clamp mechanism is positioned in the disengaged position and the clamp pin is disposed in the slotted portion of the slotted coupling aperture to thereby permit the magazine assembly to be slid relative to the fastening tool portion, the slotted portion being sized to limit sliding movement of the magazine assembly in a predetermined direction.
Independent claims3
152 paragraphs in 6 sections, as filed
PRIORITY & CROSS-REFERENCE TO RELATED APPLICATIONS
This application is a continuation-in-part of U.S. patent application Ser. No. 10/072,603 entitled Magazine Assembly for Fastening Tool, now U.S. Pat. No. 6,609,646, filed Feb. 7, 2002 which claimed the benefit of U.S. Provisional Application No. 60/267,359, filed Feb. 8, 2001. Other features of the present invention are discussed and claimed in commonly assigned copending U.S. application Ser. No. 10/10,072,668 entitled Pneumatic Fastening Tool.
FIELD OF THE INVENTION
The present invention generally relates to a fastening tool for dispensing fasteners from a magazine assembly into a workpiece and more specifically to an improved magazine assembly for a fastening tool.
BACKGROUND OF THE INVENTION
A number of pneumatically operated devices have been developed for use in driving fasteners, such as staples and nails, into workpieces. These tools typically employ a magazine assembly for holding a plurality of the fasteners and feeding the fasteners into the nose of the tool prior to the installation of the fasteners into a workpiece.
Despite the wide spread use of such tools, several drawbacks have been noted. One such drawback concerns the use of a secondary lever to release the position of a nail pusher or follower structure from a lowered and locked condition after the loading of fasteners into the magazine assembly. Such mechanisms are often times cumbersome to operate and tend to increase the weight and overall cost of the magazine assembly.
SUMMARY OF THE INVENTION
In one preferred form, the present invention provides a magazine assembly for holding and progressively dispensing a plurality of fasteners. The magazine assembly includes a magazine housing and a feed mechanism for feeding the fasteners through a hollow cavity in the magazine housing toward a dispensing end of the magazine housing. The feed mechanism includes a fastener follower, which is configured to support the fasteners in the magazine housing, and which includes a cam device. The feed mechanism also includes a cam follower that is coupled to the magazine housing at an end opposite the dispensing end. The cam follower alternately engages the cam device, such that the fastener follower is restrained from movement toward the dispensing end of the magazine housing, and disengages the cam device. Disengagement of the cam follower from the cam device occurs solely from downward motion of the fastener follower relative to the cam follower beyond a predetermined disengaging point.
In another preferred form, the present invention provides a clamp mechanism for removably coupling a magazine assembly to a tool without resort to the use of tools.
Further areas of applicability of the present invention will become apparent from the detailed description provided hereinafter. It should be understood that the detailed description and specific examples, while indicating the preferred embodiment of the invention, are intended for purposes of illustration only and are not intended to limit the scope of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
Additional advantages and features of the present invention will become apparent from the subsequent description and the appended claims, taken in conjunction with the accompanying drawings, wherein:
FIG. 1 is a left side view of a tool constructed in accordance with the teachings of a preferred embodiment of the present invention;
FIG. 2 is a right side view of the tool of FIG. 1;
FIG. 3 is an exploded perspective view of the tool of FIG. 1;
FIG. 4 is a sectional view of the tool of FIG. 1 taken through its longitudinal axis;
FIG. 4<i>a </i>is a section view taken along the line <b>4</b><i>a</i>—<b>4</b><i>a </i>of FIG. 4;
FIG. 5 is a top view of the tool of FIG. 1;
FIG. 6 is a sectional view taken along the line <b>6</b>—<b>6</b> of FIG. 5;
FIG. 7 is an enlarged portion of FIG. 4 illustrating the nose assembly in greater detail;
FIG. 8 is a front view of a portion of the tool of FIG. 1 illustrating the nose body and the contact tip in greater detail;
FIG. 9 is a sectional view taken along the line <b>9</b>—<b>9</b> of FIG. 2;
FIG. 9<i>a </i>is sectional view of a portion of the magazine clamp assembly illustrating the spring collar in greater detail;
FIG. 9<i>b </i>is a perspective view of a portion of the magazine clamp assembly illustrating the clamp pin in greater detail;
FIG. 10 is an enlarged portion of FIG. 4 illustrating the trigger assembly in greater detail;
FIG. 11 is an exploded view of the tool of FIG. 1;
FIG. 12 is an enlarged portion of FIG. 4 illustrating the rear of tool in greater detail;
FIG. 13 is a sectional view of a portion of the exhaust manifold illustrating the construction of the exhaust ports in greater detail;
FIG. 14 is an enlarged portion of FIG. 4 illustrating the engine assembly in greater detail;
FIG. 15 is an enlarged portion of FIG. 11 illustrating the engine assembly in greater detail;
FIG. 16 is a sectional view of the sleeve taken along its longitudinal axis;
FIG. 17 is a sectional view taken along the line <b>17</b>—<b>17</b> of FIG. 16;
FIG. 18 is a sectional view similar to that of FIG. 10 but illustrating the trigger assembly in an actuated condition;
FIG. 19 is an exploded perspective view of the magazine assembly;
FIG. 20 is a sectional view taken along the line <b>20</b>—<b>20</b> of FIG. <b>1</b> and illustrating the construction of the magazine body assembly;
FIG. 21 is a rear view of a portion of the magazine body assembly;
FIG. 22 is a side view of a portion of the magazine body assembly illustrating the L-shaped pin aperture in greater detail;
FIG. 23 is a top view of a guide structure;
FIG. 24 is a front view of the bracket structure;
FIG. 25 is a rear view of a portion of the bracket structure;
FIG. 26 is a side view of a portion of the bracket structure;
FIG. 27 is a side view of the follower structure;
FIG. 28 is a top view of a portion of the follower structure illustrating the construction of a portion of the follower body, the follower guide and the actuating lever;
FIG. 29 is a view of a portion of the follower structure illustrating the configuration of the forward leg of the follower body;
FIG. 30 is a view of a portion of the follower structure illustrating the configuration of the rearward leg of the follower body;
FIG. 31 is a front view of a portion of the follower structure;
FIG. 32 is a partial view of the follower structure from a side opposite the side which is illustrated in FIG. 27;
FIG. 32<i>a </i>is a view similar to that of FIG. 32 but illustrating the leg of the cam follower engaged into the catch portion of the second loading cam;
FIG. 33 is a side view of the follower spring;
FIG. 34 is a side view of the magazine end cap assembly;
FIG. 35 is a sectional view of a portion of the end cap structure taken along the line <b>35</b>—<b>35</b> in FIG. 34;
FIG. 36 is a sectional view of a portion of the end cap structure taken along the line <b>36</b>—<b>36</b> in FIG. 35;
FIG. 37 is a top view of a portion of the end cap structure;
FIG. 38 is a front view of the cam follower;
FIG. 39 is a partial side view of the cam follower;
FIG. 40 is an enlarged portion of the cam follower illustrated in FIG. 38;
FIG. 41 is a partial side view of the cam follower illustrating the follower hook in greater detail;
FIG. 42 is a partial section view illustrating the position of the cam follower on the pivot structure just prior to contact between the loading cam and the follower hook;
FIG. 43 is a partial section view similar to that of FIG. 42 but illustrating the cam follower when the follower hook is contacting the first loading cam portion;
FIG. 44 is a side view of the follower structure engaged to the magazine end cap assembly;
FIG. 45 is a section view taken along the line <b>45</b>—<b>45</b> illustrating the follower hook disposed within the capture aperture;
FIG. 46 is a side view of a portion of a tool constructed in accordance with the teachings of the an alternate embodiment of the present invention illustrating the magazine assembly removed from the tool;
FIG. 47 is a side view similar to that of FIG. 46 but illustrating the magazine assembly coupled to the tool;
FIG. 48 is a perspective view similar to that of FIG. 9<i>b </i>but illustrating an alternately constructed clamp pin; and
FIG. 49 is a partial front view similar to that of FIG. 24 but illustrating a bracket structure having an alternately constructed slotted pin aperture.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
With reference to FIG. 1 of the drawings, a fastening tool constructed in accordance with the teachings of the present invention is generally indicated by reference numeral <b>10</b>. Fastening tool <b>10</b> is illustrated to include a detachable magazine assembly <b>20</b> and a fastening tool portion <b>30</b>. The fastening tool portion <b>30</b> includes a nose assembly <b>40</b>, a housing assembly <b>42</b>, a cap assembly <b>44</b>, an engine assembly <b>46</b> and a trigger assembly <b>48</b>.
Nose Assembly
With reference to FIGS. 1 through 9, the nose assembly <b>40</b> is illustrated to include a nose structure <b>50</b>, a contact trip <b>52</b>, a trigger lever <b>54</b> and a contact trip-return spring <b>56</b>. The nose structure <b>50</b> includes a nose body <b>60</b>, a pair of magazine stabilizing tabs <b>62</b>, a magazine flange <b>64</b>, a pair of magazine guide posts <b>66</b>, a mounting base <b>68</b>, a spring post <b>70</b> and a pair of contact trip guides <b>72</b>. The nose body <b>60</b> is generally U-shaped, with the legs <b>80</b> of the “U” being inwardly offset to form a semi-circular blade cavity <b>82</b>. The inwardly offset legs <b>80</b> of the nose body <b>60</b> also serve as a guide surface <b>84</b> for guiding the lower front portion <b>86</b> of the contact trip <b>52</b>. The contact trip guides <b>72</b> are coupled to the top of the nose body <b>60</b> and form a guide surface for guiding the portion <b>88</b> of the contact trip <b>52</b> that extends over the nose body <b>60</b>.
The magazine stabilizing tabs <b>62</b> are situated on opposite sides of the nose body <b>60</b> and are spaced apart by a predetermined distance. The magazine flange <b>64</b> is a generally flat structure that is coupled to the bottom of the nose body <b>60</b> and that includes a lock-out dog aperture <b>90</b>. The magazine guide posts <b>66</b>, which are cylindrically shaped in the particular embodiment illustrated, extend downwardly and rearwardly from the magazine flange <b>64</b>. The magazine stabilizing tabs <b>62</b>, magazine flange <b>64</b> and magazine guide posts <b>66</b> are discussed in greater detail, below.
The mounting base <b>68</b> is coupled to the magazine flange <b>64</b> and the nose body <b>60</b> and includes a pair of mounting apertures <b>94</b>, a nose seal groove <b>96</b> and a nose guide <b>98</b>. The nose guide <b>98</b> is generally cylindrically shaped and includes an internal cavity <b>100</b> that having a cross-section that is configured to receive the fastener F and which may include a fastener stop <b>102</b> which is configured to prevent the fasteners F from traveling rearwardly toward the engine assembly <b>46</b>. In the embodiment illustrated, the internal cavity <b>100</b> is generally semi-circular in shape but which includes a key-shaped fastener stop <b>102</b>. The nose seal groove <b>96</b> is formed around the outer perimeter of the nose guide <b>98</b> and is sized to receive a nose seal <b>104</b>, which is an O-ring seal in the particular embodiment illustrated. The spring post <b>70</b> is coupled to the top of the mounting base <b>68</b> and includes a boss <b>108</b> that is sized to fit within the contact trip-return spring <b>56</b>.
The contact trip <b>52</b> is fit over and slides on the nose body <b>60</b>, being guided thereon by the inwardly offset legs <b>80</b> of the nose body <b>60</b> and the contact trip guides <b>72</b>. Preferably, the effective length of the contact trip <b>52</b> is adjustable so as to permit the tool operator to vary the depth at which the tool <b>10</b> sets the fasteners F. A spring protrusion <b>110</b>, which is sized to engage the inside diameter of the contact trip-return spring <b>56</b>, is formed in the rear of the contact trip <b>52</b>. The contact trip-return spring <b>56</b> is set over the boss <b>108</b> on the spring post <b>70</b> and the spring protrusion <b>110</b> on the contact trip <b>52</b> and exerts a spring force that biases the contact trip <b>52</b> away from the spring post <b>70</b>. Forward motion of the contact trip <b>52</b> is checked by a contract trip stop <b>114</b> that is formed onto a side of the nose body <b>60</b> and which contacts the contact trip <b>52</b> at a predetermined point.
The trigger lever <b>54</b> is fixedly coupled to the contact trip <b>52</b> at a first end <b>120</b> and extends rearwardly from the nose structure <b>50</b> where a second end <b>122</b> engages the trigger assembly <b>48</b> in a conventional manner that is well known in the art. Briefly, the trigger assembly <b>48</b> includes a primary trigger <b>126</b>, a secondary trigger <b>128</b> and a trigger valve <b>130</b> that selectively controls the flow of compressed air to the engine assembly <b>46</b>. The primary trigger <b>126</b> is pivotably mounted to the housing assembly <b>42</b> and movable in response to the tool operator's finger. Movement of the primary trigger <b>126</b> will not, in and of itself, alter the state of the trigger valve <b>130</b>. Rather, the second end <b>122</b> of the trigger lever <b>54</b> must also move rearwardly and into contact with the secondary trigger <b>128</b> before the state of the trigger valve <b>130</b> is changed to permit compressed air to flow to the engine assembly <b>46</b>. A stop member <b>134</b>, which is configured to interact with the magazine assembly <b>20</b> in a matter that will be discussed in greater detail below, is coupled to the trigger lever <b>54</b> below the magazine flange <b>64</b> and extends inwardly toward the nose body <b>60</b>. In the particular embodiment illustrated, the stop member <b>134</b> is die-punched into the trigger lever <b>54</b> and is offset inwardly therefrom toward the nose body <b>60</b>.
Housing Assembly
Housing assembly <b>42</b> includes a unitarily formed housing <b>150</b>, a piston bumper <b>152</b>, a magazine clamp assembly <b>154</b> and a housing seal <b>156</b>, which is illustrated to be an O-ring seal in the example provided. The housing <b>150</b> includes a housing body <b>160</b>, a trigger housing <b>162</b>, a nose housing <b>164</b> and a handle portion <b>166</b>. The housing body <b>160</b> is a container-like structure having a front base <b>170</b> and an outwardly tapering sidewall <b>172</b> that cooperate to form a housing cavity <b>174</b>. The outwardly tapering sidewall <b>172</b> terminates at the rear of the housing body <b>160</b> at a rear housing face <b>176</b>, which in the particular embodiment illustrated, includes a housing seal groove <b>178</b> that is configured to receive the housing seal <b>156</b>. A guide bore <b>180</b> is formed into the inside face <b>182</b> of the housing cavity <b>174</b> and terminates at its forward end at a guide stop <b>184</b>. A nose guide aperture <b>188</b> is formed through the front base <b>170</b> of the housing body <b>160</b>.
The nose housing <b>164</b> is coupled to the front base <b>170</b> of the housing body <b>160</b> and extends forwardly therefrom. The nose housing <b>164</b> includes an upper shroud <b>200</b>, a pair of sidewalls <b>202</b> and a pair of spaced apart bosses <b>204</b>, each of which having a threaded aperture <b>206</b>. The upper shroud <b>200</b>, sidewalls <b>202</b> and spaced apart bosses <b>204</b> cooperate to locate the nose assembly <b>40</b> to the housing <b>150</b> and the nose guide <b>98</b> is inserted into the nose guide aperture <b>188</b>. Threaded fasteners <b>210</b> are placed through each of the mounting apertures <b>94</b> in the mounting base <b>68</b> and threadably engaged to the threaded apertures <b>206</b> in the spaced apart bosses <b>204</b> to fixedly but removably couple the nose assembly <b>40</b> to the housing <b>150</b>. The axis <b>212</b> of the threaded fasteners <b>210</b> is skewed toward the rear of the tool <b>10</b>, causing the threaded fasteners <b>210</b> to exert a clamping force that pushes the nose assembly <b>40</b> downwardly onto the spaced apart bosses <b>204</b> and rearwardly against the front face of the front base <b>170</b> to thereby compress the nose seal <b>104</b> and sealingly engage the nose structure <b>50</b> to the housing body <b>160</b>. The upper shroud covers the spring post <b>70</b>, the contact trip-return spring <b>56</b> and a portion of the rear of the contact trip <b>52</b> to prevent foreign objects from lodging between the rear of the contact trip <b>52</b> and the spring post <b>70</b>.
The handle portion <b>166</b> is preferably non-circular in shape and contoured to comfortably fit the hand of a tool operator. The distal end <b>250</b> of the handle portion <b>166</b> is enlarged so as to render the handle portion <b>166</b> less prone to slipping out of the tool operator's hand. With additional reference to FIG. 4<i>a</i>, a clamp boss <b>252</b> is coupled to the forward face of the distal end <b>250</b> of the handle portion <b>166</b>. The clamp boss <b>252</b> includes a clamp boss base <b>254</b> that extends toward the front of the tool <b>10</b>, a clamp boss sidewall <b>256</b> that wraps around the perimeter of the clamp boss base <b>254</b> and an annular intermediate clamp boss wall <b>258</b> that cooperates with a portion of the clamp boss sidewall <b>256</b> to form a circular spring cavity <b>260</b>. The clamp boss base <b>254</b> and the clamp boss sidewall <b>256</b> cooperate to form a clamp cavity <b>262</b> into which the magazine clamp assembly <b>154</b> is disposed. A pair of U-shaped pin apertures <b>264</b>, which will be discussed in further detail below, are formed into an end of the clamp boss sidewall <b>256</b>.
The handle portion <b>166</b> intersects both the housing body <b>160</b> and the trigger housing <b>162</b> and includes an air inlet cavity <b>270</b> which extends through the distal end <b>250</b> of the handle portion <b>166</b> to receive a supply of compressed air. The air inlet cavity <b>270</b> extends through the handle portion <b>166</b> and into both the housing cavity <b>174</b> and the trigger housing <b>162</b> to permit the compressed air to be directed through the tool <b>10</b> in a predetermined manner that will be described in detail, below.
In the example provided, the magazine clamp assembly <b>154</b> is illustrated to include a clamp pin <b>300</b>, a compression spring <b>302</b>, a spring collar <b>304</b>, an actuating cam <b>306</b> and a coupling pin <b>308</b>. The clamp pin <b>300</b> includes a head portion <b>322</b>, a first body section <b>324</b>, which is coupled to the head portion <b>322</b>, and a second body section <b>326</b> that is coupled to the opposite end of the first body section <b>324</b>. The first body section <b>324</b> is generally cylindrically shaped and includes a pair of parallel flats <b>328</b>. The second body section <b>326</b> is generally cylindrically shaped but has an outer diameter that is smaller than that of the first body section <b>324</b>. The head portion <b>322</b> includes a frusto-conical abutting face <b>330</b>.
The spring collar <b>304</b> includes a first annular portion <b>340</b> having a diameter that is sized to fit within the compression spring <b>302</b>, and a second annular portion <b>342</b> that is relatively larger in diameter than the compression spring <b>302</b> and which has a flat contact surface <b>344</b>. A pin aperture <b>346</b> is formed through the spring collar <b>304</b> that is sized to receive the second body section <b>326</b> of the clamp pin <b>300</b>.
The actuating cam <b>306</b> has a base portion <b>350</b> and a leg portion <b>352</b> which are arranged relative to one another in an L-shape. The end of the base portion <b>350</b> opposite the intersection point <b>354</b> between the base and leg portions <b>350</b> and <b>352</b> includes a coupling pin aperture (not specifically shown) which is sized to engage the coupling pin <b>308</b>. The leg portion <b>352</b> of the actuating cam <b>306</b> is arcuate in shape and includes a plurality of gripping protrusions <b>356</b> or is otherwise textured on its inside surface so as to improve the tool operator's ability to move the actuating cam <b>306</b> in a desired direction. A slot <b>358</b>, which is sized to engage the second body segment <b>326</b> of the clamp pin <b>300</b> in a slip-fit manner, is formed into the actuating cam <b>306</b> through the base portion <b>350</b> and a portion of the leg portion <b>352</b>.
The clamp pin <b>300</b> extends through a pin aperture <b>360</b> formed into the clamp boss base <b>254</b> of the clamp boss <b>252</b> such that the second body section <b>326</b> extends into the spring cavity <b>260</b>. The compression spring <b>302</b> is positioned over the second body section <b>326</b> and into the spring cavity <b>260</b>. The spring collar <b>304</b> is placed over the second body section <b>326</b> such that the first annular portion <b>340</b> is disposed inside the compression spring <b>302</b>. The base portion <b>350</b> of the actuating cam <b>306</b> is positioned into contact with the flat contact surface <b>344</b> such that the second body segment <b>326</b> extends into the portion of the slot <b>358</b> that is formed into the base portion <b>350</b> of the actuating cam <b>306</b>. The coupling pin <b>308</b>, which is a roll-pin in the example illustrated, is positioned into one of the U-shaped pin apertures <b>264</b> and driven through the base portion <b>350</b> of the actuating cam <b>306</b> and into engagement with a pin aperture <b>364</b> in the second body segment <b>326</b> of the clamp pin <b>300</b>. Accordingly, the coupling pin <b>308</b> pivotably couples the actuating cam <b>306</b> to the clamp pin <b>300</b>. Rotation of the actuating cam <b>306</b> about the coupling pin <b>308</b> places the intersection point <b>354</b> into contact with the flat contact surface <b>344</b>, causing the spring collar <b>304</b> to compress the compression spring <b>302</b> and transmit a clamping force to the head portion <b>322</b> of the clamp pin <b>300</b>. When the actuating cam <b>306</b> has been pivoted sufficiently so as to place the leg portion <b>352</b> into contact with the flat contact surface <b>344</b>, the force exerted by the compression spring <b>302</b> urges the spring collar <b>304</b> against the leg portion <b>352</b> to releasably lock the actuating cam <b>306</b> in place. The clamp cavity <b>262</b> protects the actuating cam <b>306</b> from being contacted during the operation of the tool <b>10</b>, thereby guarding against the inadvertent unlocking or releasing of the actuating cam <b>306</b>.
In FIG. 10, the trigger housing <b>162</b> is configured to receive the trigger assembly <b>48</b> and includes a supply port <b>370</b>, which is coupled to the air inlet cavity <b>270</b> to provide the trigger assembly <b>48</b> with a source of compressed air. A biasing port <b>372</b> extends from the trigger housing <b>162</b> through the guide bore <b>180</b> in the housing cavity <b>174</b> that permits the trigger assembly <b>48</b> to direct air to or exhaust air from the housing cavity <b>174</b>.
As shown in FIGS. 7 and 11, the piston bumper <b>152</b> is a unitarily formed molded elastomeric structure. In the particular example illustrated, the piston bumper <b>152</b> has a cylindrical body portion <b>390</b> and an annular lip <b>392</b>. The cylindrical body portion <b>390</b> preferably includes a first annular bumper portion <b>396</b> and a second annular bumper portion <b>398</b> that is generally larger in diameter than the first annular bumper portion <b>396</b> and which is disposed between the first annular bumper portion <b>396</b> and the annular lip <b>392</b>. The annular lip <b>392</b> extends radially outwardly of the body portion <b>390</b> and includes a front abutting face <b>400</b> that is configured to abut the inside surface <b>402</b> of the housing body <b>160</b> and sealingly engage the front base <b>170</b> of the housing body <b>160</b>. The annular lip <b>392</b> also includes a rear abutting face <b>404</b> having a first annular lip portion <b>406</b> and a second annular lip portion <b>408</b> that that lies radially outwardly of and recessed forwardly relative to the first annular lip portion <b>406</b>. The rear abutting face <b>404</b> and a cylindrically-shaped driver blade aperture <b>410</b> that extends through the center of the piston bumper <b>152</b> will be described in detail, below.
Cap Assembly
With reference to FIGS. 11 and 12, the cap assembly <b>44</b> includes a cap housing <b>420</b>, an exhaust manifold <b>422</b> and a top bumper <b>424</b>. The cap housing <b>420</b> includes an outer cap wall <b>430</b> that is generally flat at the rear of the tool <b>10</b>, but folds over on its sides to form a cup-like container having a generally flat forward face <b>432</b> that is configured to engage the housing seal <b>156</b> to permit the cap housing <b>420</b> to be sealingly coupled to the rear of the housing <b>150</b>.
The cap housing <b>420</b> also includes a plurality of foot tabs <b>434</b>, a plurality of strengthening gussets (not specifically shown), an annular exhaust port wall <b>438</b>, an exhaust button <b>440</b> and a cylindrical locating hub <b>442</b> having a threaded aperture <b>444</b> formed therethrough. The foot tabs <b>434</b> extend forwardly from the flat portion of the outer cap wall <b>430</b> beyond the front face <b>432</b> by a predetermined distance. The outside diameter of the foot tabs <b>434</b> is sized such that the foot tabs <b>434</b> fit within the housing cavity <b>174</b>. The foot tabs <b>434</b> will be discussed in greater detail, below. The strengthening gussets are employed to couple both the foot tabs <b>434</b> or the outer cap wall <b>430</b> to the annular exhaust port wall <b>438</b>, which extends forwardly from the flat rear portion <b>446</b> of the outer cap wall <b>430</b>. The exhaust button <b>440</b> is an annular member that also extends forwardly from the flat rear portion <b>446</b> of the outer cap wall <b>430</b> but which is spaced apart from the annular exhaust port wall <b>438</b> and the locating hub <b>442</b>. A plurality of primary exhaust ports <b>450</b> are formed through the exhaust button <b>440</b> and a plurality of secondary exhaust ports <b>452</b> are formed through the portion of the outer cap wall <b>430</b> between the annular exhaust port wall <b>438</b> and the exhaust button <b>440</b>.
The exhaust manifold <b>422</b> is preferably unitarily formed from a molded from a plastic material and includes a center hub <b>460</b>, an annular spacing wall <b>462</b> and an annular manifold wall <b>464</b>. The center hub <b>460</b> is configured to fit between the exhaust button <b>440</b> and the locating hub <b>442</b> and includes a hub aperture <b>468</b> that is configured to engage the locating hub <b>442</b> in a slip fit manner. The annular spacing wall <b>462</b> is coupled to the forward-most portion of the center hub <b>460</b> and is spaced apart from the exhaust button <b>440</b>. The annular manifold wall <b>464</b> is coupled to the outer perimeter of the annular spacing wall <b>462</b> and includes a plurality of circumferentially extending exhaust slots <b>470</b> that are spaced around the circumference of the annular manifold wall <b>464</b>. The exhaust slots <b>470</b> are generally U-shaped and as best shown in FIG. 13, have a rear edge <b>472</b> that tapers rearwardly and inwardly toward the center hub <b>460</b>.
Returning to FIGS. 11 and 12, the top bumper <b>424</b> preferably includes a dampening member <b>480</b> that is molded from an elastomeric material, such as urethane, and a structural member <b>482</b>, such as a washer, that is molded into the dampening member <b>480</b>. The dampening member <b>480</b> is a cup-shaped structure that is sized to fit within the center hub <b>460</b> of the exhaust manifold <b>422</b>. The dampening member <b>480</b> includes an annular wall <b>484</b> that extends forwardly from the base <b>486</b> of the dampening member <b>480</b>. A ridge <b>488</b> is formed into the forward end of the annular wall <b>484</b>, thereby creating a groove <b>490</b> between the base <b>486</b> of the dampening member <b>480</b> and the ridge <b>488</b>. A plurality of slits <b>492</b> are formed into the annular wall <b>484</b>, creating a plurality of wall segments <b>494</b> that are flexibly coupled to the base <b>486</b>. A threaded fastener <b>496</b> is threadably engaged to the threaded aperture <b>444</b> in the locating hub <b>442</b> to fixedly but removably couple the top bumper <b>424</b> to the cap housing <b>420</b>. The structural member <b>482</b> is employed so as to permit the clamping force that is exerted by the threaded fastener <b>496</b> to be transmitted through the top bumper <b>424</b> without crushing the base <b>486</b> of the dampening member <b>480</b>. A portion of the clamping force is transmitted through the base <b>486</b> of the dampening member <b>480</b> and into the center hub <b>460</b> of the exhaust manifold <b>422</b> to maintain the exhaust manifold <b>422</b> in a stationary position relative to the cap housing <b>420</b>.
Engine Assembly
Engine assembly <b>46</b> is shown to include a cylinder assembly <b>500</b>, a piston assembly <b>502</b>, a rod or driver blade <b>504</b>. The cylinder assembly <b>500</b> includes a hollow, cylindrical, and unitarily constructed sleeve <b>510</b>, an inner exhaust port seal <b>512</b>, an outer exhaust port seal <b>514</b>, a cap flange seal <b>516</b>, rear and front guide seals <b>518</b> and <b>520</b>, a guide assembly <b>522</b>, a compensating valve <b>524</b>, a rear spring flange <b>526</b>, a spring <b>528</b>, a front spring flange <b>530</b> and a front spring flange seal <b>532</b>. In the particular embodiment illustrated, inner exhaust port seal <b>512</b>, outer exhaust port seal <b>514</b>, rear and front guide seals <b>518</b> and <b>520</b> and front spring flange seal <b>532</b> are conventional, commercially available O-ring seals. The cap flange seal <b>516</b> is a molded elastomeric seal having an outside surface with a generally flat seal face <b>540</b> and first and second radially inwardly extending flanges <b>542</b> and <b>544</b>, respectively, that are spaced apart from one another to form an engagement groove <b>546</b> therebetween.
With additional reference to FIG. 16, the sleeve <b>510</b> is shown to include a first sleeve body portion <b>550</b>, an annular sleeve flange <b>552</b>, a second sleeve body portion <b>554</b> having a maximum outer diameter that is generally the same as that of the first sleeve body portion <b>550</b> and a third sleeve body portion <b>556</b> having a maximum outer diameter that is generally larger than that of the first sleeve body portion <b>550</b>. The first sleeve body portion <b>550</b> includes a first U-shaped seal groove <b>560</b>, which is sized to receive the front spring flange seal <b>532</b>, a plurality of circumferentially-spaced front exhausting ports <b>562</b>, a spring flange groove <b>564</b>, which is sized to receive the rear spring flange <b>526</b>, a valve groove <b>566</b>, which is discussed in greater detail, below, and a second U-shaped seal groove <b>568</b>, which is sized to receive the front guide seal <b>520</b>.
The valve groove <b>566</b> has a first U-shaped portion <b>570</b>, a second U-shaped portion <b>572</b> and a plurality of valve apertures <b>574</b>. The first U-shaped portion <b>570</b> is sized to receive the compensating valve <b>524</b>, which in the particular embodiment illustrated, is a flat elastomeric band <b>580</b>. The second U-shaped portion <b>572</b> is disposed within the first U-shaped portion <b>570</b>, but has a diameter that is somewhat smaller than that of the first U-shaped portion <b>570</b> so as to define an annular ring that extends around the circumference of the first U-shaped portion <b>570</b>. In the particular embodiment illustrated, the diameter of the second U-shaped portion <b>572</b> is about 0.010 inches to about 0.030 inches smaller in diameter than the first U-shaped portion <b>570</b>. The valve apertures <b>574</b> are illustrated to be relatively small diameter holes that are located within the second U-shaped portion <b>572</b> and which are drilled through the sleeve <b>510</b>. The valve apertures <b>574</b> will be discussed in greater detail, below, as will the set of front exhausting ports <b>562</b> that are located between the first U-shaped seal groove <b>560</b> and the spring flange groove <b>564</b>.
The annular sleeve flange <b>552</b> extends radially outwardly from the first sleeve body portion <b>550</b> of the sleeve <b>510</b> and separates the first and second sleeve body portions <b>550</b> and <b>554</b> from one another. A third U-shaped seal groove <b>584</b>, which is sized to receive the rear guide seal <b>518</b> is formed into the outer surface of the annular sleeve flange <b>552</b>.
The majority of the second sleeve body portion <b>554</b> of the sleeve <b>510</b> is of approximately the same outer diameter as the first sleeve body portion <b>550</b>. The rear end of the second sleeve body portion <b>554</b>, however, includes a flange portion <b>590</b> that extends radially outwardly to form a seal lip <b>592</b> and a fourth U-shaped seal groove <b>594</b> prior to its connection with the third sleeve body portion <b>556</b>. The seal lip <b>592</b> is configured to engage the engagement groove <b>546</b> formed into the cap flange seal <b>516</b> and abut the first and second radially inwardly extending flanges <b>542</b> and <b>544</b>. The fourth U-shaped seal groove <b>594</b> is configured to receive a portion of the first radially inwardly extending flange <b>542</b>.
The third sleeve body portion <b>556</b> is fixedly coupled to the end of the second sleeve body portion <b>554</b> and is larger in diameter than the outer diameter of the first sleeve body portion <b>550</b>. A fifth U-shaped seal groove <b>600</b> is formed into the outer surface of the third sleeve body portion <b>556</b> and is sized to receive the outer exhaust port seal <b>514</b>. A plurality of circumferentially extending rear exhaust slots <b>604</b> are disposed around the perimeter of the third sleeve body portion <b>556</b>. The rear exhaust slots <b>604</b> are located between the fourth and fifth U-shaped seal grooves <b>594</b> and <b>600</b>. A sixth U-shaped seal groove <b>608</b>, which is configured to receive the inner exhaust port seal <b>512</b>, is formed into the inner diameter of the third sleeve body portion <b>556</b>.
The hollow cavity <b>610</b> that is formed through the sleeve <b>510</b> has a first cavity portion <b>612</b> that is generally of a constant diameter over the portion of its length that includes the first and second sleeve body portions <b>550</b> and <b>554</b> and the annular sleeve flange <b>552</b>. The hollow cavity <b>610</b> also has a second cavity portion <b>614</b> having a larger diameter than that of the first cavity portion <b>612</b>.
In FIG. 14, the guide assembly <b>522</b> is shown to include a guide <b>650</b> and first and second housing seals <b>652</b> and <b>654</b>, which in the particular embodiment illustrated, are O-ring seals. The guide <b>650</b> is a molded plastic component, having a stepped-diameter body portion <b>660</b>, a plurality of longitudinally extending legs <b>662</b>, a locating tab <b>664</b> and a plurality of stop tabs <b>668</b>. The stepped-diameter body portion <b>660</b> includes a flange bore <b>670</b>, which is sized to receive the annular sleeve flange <b>552</b> and sealingly engage the rear guide seal <b>518</b>, a body bore <b>672</b>, which is sized to receive the first sleeve body portion <b>550</b> and sealingly engage the front guide seal <b>520</b>, and an abutting flange <b>676</b> that forms the transition between the flange bore <b>670</b> and the body bore <b>672</b>.
The longitudinally extending legs <b>662</b> extend away from the stepped-diameter body portion <b>660</b> and are spaced apart circumferentially in equal amounts. The locating tab <b>664</b> is positioned on the same side of the stepped-diameter body portion <b>660</b> as the longitudinally extending legs <b>662</b> between two of the longitudinally extending legs <b>662</b>. The locating tab <b>664</b> is employed to signify the presence of an air gallery <b>680</b> and locate the guide assembly <b>522</b> relative to the housing assembly <b>42</b>. The air gallery <b>680</b> is configured to permit air to flow through the stepped-diameter body portion <b>660</b> from a point between the first and second housing seals <b>652</b> and <b>654</b> through the stepped-diameter body portion <b>660</b> and out the abutting flange <b>676</b>.
The rear and front guide seals <b>518</b> and <b>520</b> and the elastomeric band <b>580</b> that forms a portion of the compensating valve <b>524</b> are initially installed to the sleeve <b>510</b>. Thereafter, the guide assembly <b>522</b> is positioned over the first sleeve body portion <b>550</b> and pushed onto the sleeve <b>510</b> such that the flange bore <b>670</b> and body bore <b>672</b> are sealingly engaged to the rear and front guide seals <b>518</b> and <b>520</b>, respectively, and the abutting flange <b>676</b> abuts the annular sleeve flange <b>552</b>.
The rear spring flange <b>526</b> is next installed to the sleeve <b>510</b>. The rear spring flange <b>526</b> is a plastic collar that is split on one side to permit the ends of the rear spring flange <b>526</b> to be spread apart so that it may be loaded onto the first sleeve body portion <b>550</b> of the sleeve <b>510</b> and into the spring flange groove <b>564</b>. The rear spring flange <b>526</b> has a cylindrically shaped body portion <b>690</b> and a flange portion <b>692</b> that extends radially-outwardly from the body portion <b>590</b> in a manner that provides the rear spring flange <b>526</b> with a L-shaped cross-section. The rear spring flange <b>526</b> is located to the spring flange groove <b>564</b> such that the flange portion <b>692</b> is nearest the annular sleeve flange <b>552</b>.
The front spring flange <b>530</b> is a plastic collar having a tapering outside diameter <b>596</b> and a generally flat rear face <b>698</b>. The inside surface <b>700</b> of the front spring flange <b>530</b> is generally cylindrical, but includes an annular protrusion <b>702</b> that extends radially inwardly of the remainder of the inside surface <b>700</b> and which engages the first sleeve body portion <b>550</b> of the sleeve <b>510</b> in a slip-fit manner.
The spring <b>528</b> is a conventional compression spring having both ends ground flat. The spring <b>528</b> is disposed over the first sleeve body portion <b>550</b> of the sleeve <b>510</b> such that its rear end abuts the flange portion <b>692</b> of the rear spring flange <b>526</b>. Thereafter, the front spring flange <b>530</b> is positioned such that its rear face <b>698</b> contacts the second end of the spring <b>528</b>. The front spring flange <b>530</b> is pushed toward the annular sleeve flange <b>552</b> to compress the spring <b>528</b> a sufficient distance to permit the front spring flange seal <b>532</b> to be inserted into the first U-shaped seal groove <b>560</b>. Thereafter, the front spring flange <b>530</b> is moved toward the front of the sleeve <b>510</b> such that the front spring flange seal <b>532</b> is sealingly engaged with the inside surface <b>700</b> of the front spring flange <b>530</b>. The rear side of the front spring flange seal <b>532</b> contacts the annular protrusion <b>702</b> to limit the forward travel of the front spring flange <b>530</b> prior to the installation of the engine assembly <b>46</b> to the housing assembly <b>42</b>. Forward motion of the guide assembly <b>522</b> along the sleeve <b>510</b> is checked by contact between the stop tabs <b>668</b> and the rear surface of the flange portion <b>692</b> of the rear spring flange <b>526</b> to thereby prevent the guide <b>650</b> from becoming disengaged from the rear and front guide seals <b>518</b> and <b>520</b>. Construction in this manner is highly advantageous in that it permits the entire cylinder assembly <b>500</b> to be pre-assembled outside of the housing assembly <b>42</b> in a relatively easy and cost efficient manner.
The piston assembly <b>502</b> includes a piston <b>720</b> and a ring <b>722</b>. In the example provided, the piston <b>720</b> is shown to include a first piston portion <b>730</b> and a second piston portion <b>732</b>. The first piston portion <b>730</b> in an annular member that is smaller in diameter than the first cavity portion <b>612</b> of the hollow cavity <b>610</b> in the sleeve <b>510</b>. A U-shaped annular ring groove <b>734</b> is formed around the circumference of the first piston portion <b>730</b> that is sized to receive the ring <b>722</b>. In the embodiment illustrated, the ring <b>722</b> is shown to be fabricated from a plastic material and have a rectangular cross-section. The ring <b>722</b> is split to permit its ends of the ring <b>722</b> to be spread apart so that it may be loaded around the first piston portion <b>730</b> and into the ring groove <b>734</b>. The second piston portion <b>732</b> is an annular member that is smaller in diameter than the first piston portion <b>730</b>. The second piston portion <b>732</b> is coupled to the rear end of the first piston portion <b>730</b> and includes a pair of wrench flats <b>740</b> and a locking protrusion <b>744</b>, both of which will be discussed in more detail, below. A generous fillet radius <b>746</b> is employed at the intersection between the first and second piston portions <b>730</b> and <b>732</b> so as to reduce the concentration of stress within the piston <b>720</b>.
The construction of the driver blade <b>504</b> is largely conventional and as such, a detailed discussion of it is neither required nor within the scope of this disclosure. Briefly, the driver blade <b>504</b> is shown to include a coupling portion <b>760</b> and a driver body <b>762</b>. In the example provided, the coupling portion <b>760</b> includes a collar <b>764</b> and a threaded portion <b>766</b> which are formed into the rear end of the driver blade <b>504</b>. The wrench flats <b>740</b> on the second piston portion <b>732</b> are employed to facilitate relative rotation between the driver blade <b>504</b> and the piston <b>720</b> to permit the threaded portion <b>766</b> to threadably engage a threaded aperture <b>768</b> that is formed through the piston <b>720</b> and to permit the collar <b>764</b> to engage the front surface <b>770</b> of the piston <b>720</b> to generate a clamping force that fixedly but removably couples the piston <b>720</b> and the driver blade <b>504</b> together. Coupling of the piston <b>720</b> and the driver blade <b>504</b> via a threaded connection is presently preferred so as to permit the servicing and replacement of the driver blade <b>504</b>, since this portion of the tool <b>10</b> is essentially perishable. Those skilled in the art will understand, however, that other coupling mechanisms, such as press-fitting, shrink fitting, welding, or any other mechanical coupling method may also be employed.
The driver body <b>762</b> is sized to fit in the blade cavity <b>82</b> and is shown to include a keyway <b>774</b>, a slide surface <b>776</b>, a loading groove <b>778</b> and a tip portion <b>780</b>. The keyway <b>774</b> is illustrated to be a cut that is formed into the surface of the driver body <b>762</b> along its longitudinal axis. The fastener stop <b>102</b> that is formed into the internal cavity <b>100</b> in the nose guide <b>98</b> is disposed within the keyway <b>782</b> to guard against a situation wherein fasteners F feed rearwardly into the tool <b>10</b>. The slide surface <b>776</b> is generally flat and provides the driver body <b>762</b> with a relatively large surface that will consistently slide over the fasteners F that are loaded into the magazine assembly <b>20</b>. The tip portion <b>780</b> is formed at the front end of the driver body <b>762</b> and is operable for contacting the fasteners F and driving them into a workpiece. The loading groove <b>778</b> is cylindrically shaped and is formed along an axis that is skewed to the longitudinal axis of the driver blade <b>504</b> such that it intersects both the tip portion <b>780</b> and the slide surface <b>776</b>. The loading groove <b>778</b> is tapered such that it is deepest at the front of the driver blade <b>504</b>. The loading groove <b>778</b> ensures that only one fastener F is sheared from the remaining fasteners F in the magazine assembly <b>20</b>. The loading groove <b>778</b> also permits the fasteners F in the magazine assembly <b>20</b> to move upwardly toward the nose body <b>60</b> of the tool <b>10</b> prior to the time at which the driver blade <b>504</b> has stroked back to its rear-most (i.e., retracted) position to thereby minimize the lag time between the point at which the driver blade <b>504</b> has moved to its retracted position and the point at which the driver blade <b>504</b> can be moved forwardly to drive another fastener F.
With additional reference to FIGS. 16 and 17, the driver blade <b>504</b> and the piston assembly <b>502</b>, once coupled to one another, are inserted into the second cavity portion <b>614</b> of the hollow cavity <b>610</b> in the sleeve <b>510</b>. The diameter of the second cavity portion <b>614</b> is larger than the diameter of the piston assembly <b>502</b> (with the ring <b>722</b> in an expanded condition). A chamfer <b>790</b> is employed at the front of the second cavity portion <b>614</b> to facilitate the transition to the smaller-diameter first cavity portion <b>612</b>. With the exertion of light force onto the rear of the piston assembly <b>502</b>, the piston assembly <b>502</b> is moved forwardly in the hollow cavity <b>610</b> and into contact with the chamfer <b>790</b>. The chamfer <b>790</b> is operable for compressing the ring <b>722</b> to permit the piston assembly <b>502</b> to travel into the first cavity portion <b>612</b>.
Once assembled, the engine assembly <b>46</b> is placed into the housing cavity <b>174</b> such that the locating tab <b>664</b> is aligned to a tab slot <b>800</b> formed into the housing cavity <b>174</b> and the driver blade <b>504</b> is inserted through the driver blade aperture <b>410</b> in the piston bumper <b>152</b> and into the internal cavity <b>100</b> in the nose guide <b>98</b>. The engine assembly <b>46</b> is pushed forwardly into the housing cavity <b>174</b> to engage the guide assembly <b>522</b> against the guide stop <b>184</b>. In this position, the first and second housing seals <b>652</b> and <b>654</b> sealingly engage the guide bore <b>180</b> that is formed into the inside surface <b>182</b> of the outwardly tapering sidewall <b>172</b>. The first and second annular bumper portions <b>396</b> and <b>398</b> extend through the front face <b>810</b> of the sleeve <b>510</b> and into the hollow cavity <b>610</b>. The front face <b>820</b> of the front spring flange <b>530</b> sealingly contacts the second annular lip portion <b>408</b> on the piston bumper <b>152</b>. The cap assembly <b>44</b> is thereafter placed onto the rear end of the housing assembly <b>42</b> such that each of the longitudinally extending legs <b>662</b> contacts one of the foot tabs <b>434</b>. The foot tabs <b>434</b> cooperate with the longitudinally extending legs <b>662</b> to prevent the guide assembly <b>522</b> from moving along the longitudinal axis of the tool <b>10</b>. The sleeve <b>510</b>, however, is slidable within the guide assembly <b>522</b>, as will be discussed in greater detail, below.
Alternatively, the piston assembly <b>502</b> and driver blade <b>504</b> may be inserted into the housing cavity <b>174</b> such that the driver blade <b>504</b> is inserted through the driver blade aperture <b>410</b> in the piston bumper <b>152</b> and into the internal cavity <b>100</b> in the nose guide <b>98</b>. The cylinder assembly <b>500</b> is then loaded into the housing cavity <b>174</b> in the manner discussed above. A lead L formed into the front face <b>810</b> of the sleeve <b>510</b> that permits the ring <b>722</b> to be compressed so that the piston assembly <b>502</b> can travel rearwardly into the first cavity portion <b>612</b> of the hollow cavity <b>610</b> in the sleeve <b>510</b>.
Engine Operation
With reference to FIGS. 10, <b>14</b> and <b>16</b>, when the tool <b>10</b> has been coupled to a source of compressed air, the trigger assembly <b>48</b> maintains the trigger valve <b>130</b> in an unactuated state wherein compressed air is directed from the supply port <b>370</b> to the biasing port <b>372</b> where it enters the air gallery <b>680</b> at a point between the first and second housing seals <b>652</b> and <b>654</b>. Compressed air flows through the stepped-diameter body portion <b>660</b> and exits from the abutting flange <b>676</b> where it enters a sleeve return chamber <b>850</b> that is defined by the forward face <b>852</b> of the annular sleeve flange <b>552</b>, the rear guide seal <b>518</b>, the flange bore <b>670</b>, the body bore <b>672</b>, the front guide seal <b>520</b> and the first sleeve body portion <b>550</b> of the sleeve <b>510</b>. As the guide <b>650</b> is not movable within the housing <b>150</b>, the pressure of the air that is in the sleeve return chamber <b>850</b> is exerted against the front face <b>852</b> of the annular sleeve flange <b>552</b> to bias the sleeve <b>510</b> in a rearward direction.
The air inlet cavity <b>270</b> also provides compressed air to a sleeve extend chamber <b>860</b> that is defined by the rearward face <b>862</b> of the annular sleeve flange <b>552</b>, the rear guide seal <b>518</b>, the guide <b>650</b>, the second housing seal <b>654</b>, the portion of the outwardly tapering sidewall <b>172</b> that is situated rearwardly of the second housing seal <b>654</b>, the outer portion of the cap housing <b>420</b> that includes the annular exhaust port wall <b>438</b>, the cap flange seal <b>516</b> and the second sleeve body portion <b>554</b> of the sleeve <b>510</b>. Compressed air in the sleeve extend chamber <b>860</b> directs force to both the rearward face <b>862</b> of the annular sleeve flange <b>552</b> and the front face <b>864</b> of the flange portion <b>590</b> of the second sleeve body portion <b>554</b> of the sleeve <b>510</b>.
The forces that act on the annular sleeve flange <b>552</b> and the front face <b>864</b> of the flange portion <b>590</b>, in cooperation with the force that is exerted by the spring <b>528</b>, bias the sleeve <b>510</b> in a rearward direction into its retracted position such that the flat seal face <b>540</b> of the cap flange seal <b>516</b> sealingly engages the front face <b>866</b> of the annular exhaust port wall <b>438</b>.
With reference to FIGS. 10 and 12, when the sleeve <b>510</b> is in the retracted position, a primary exhaust chamber <b>870</b> is defined by the cap flange seal <b>516</b>, the inside surface <b>872</b> of the annular exhaust port wall <b>438</b>, the outer exhaust port seal <b>514</b>, the third sleeve body portion <b>556</b> of the sleeve <b>510</b>, the inner exhaust port seal <b>512</b>, the exhaust manifold <b>422</b>, the second sleeve body portion <b>554</b> of the sleeve <b>510</b>, the piston assembly <b>502</b> and the driver blade <b>504</b>. The position of the sleeve <b>510</b> relative to the cap assembly <b>44</b> is such that the air that is in the primary exhaust chamber <b>870</b> is permitted to flow between the third sleeve body portion <b>556</b> and exhaust manifold <b>422</b>, through the exhaust slots <b>470</b> in the exhaust manifold <b>422</b> and out the primary exhaust ports <b>450</b> in the exhaust button <b>440</b> where this air is vented to atmosphere.
With the sleeve <b>510</b> in the retracted position, a secondary exhaust chamber <b>880</b> is formed by the annular exhaust port wall <b>438</b>, the outer exhaust port seal <b>514</b>, the third sleeve body portion <b>556</b> of the sleeve <b>510</b>, the inner exhaust port seal <b>512</b>, the exhaust manifold <b>422</b>, the exhaust button <b>440</b> and the portion of the outer cap wall <b>430</b> between the annular exhaust port wall <b>438</b> and the exhaust button <b>440</b>. Air that is in the secondary exhaust chamber <b>880</b> is vented to the atmosphere through the primary exhaust ports <b>450</b> in the exhaust button <b>440</b> and through the secondary exhaust ports <b>452</b> in the portion of the outer cap wall <b>430</b> between the annular exhaust port wall <b>438</b> and the exhaust button <b>440</b>.
With reference to FIGS. 12, <b>14</b> and <b>18</b>, when the trigger assembly <b>48</b> is actuated to change the state of the trigger valve <b>130</b> to an actuated state, air in the sleeve return chamber <b>850</b> is vented through the trigger assembly <b>48</b> to the atmosphere. Consequently, the force that is exerted onto the rear face <b>862</b> of the annular sleeve flange <b>552</b> causes the sleeve <b>510</b> to slide forwardly relative to the housing assembly <b>42</b>. When the sleeve <b>510</b> slides in a forward direction, the seal between the cap flange seal <b>516</b> and the front face <b>866</b> of the annular exhaust port wall <b>438</b> is broken, permitting compressed air to flow through the rear exhaust slots <b>604</b> in the third sleeve body portion <b>556</b> of the sleeve <b>510</b>. As the area of the front surface <b>900</b> of the rear exhaust slots <b>604</b> is larger than the area of its rear surface <b>902</b>, the pressure of the air flowing through the rear exhaust slots <b>604</b> also tends to push the sleeve <b>510</b> in a forward direction. The piston bumper <b>152</b> checks forward travel of the sleeve <b>510</b>. More specifically, forward travel of the sleeve <b>510</b> is checked when the front face <b>810</b> of the sleeve <b>510</b> contacts the first annular lip portion <b>406</b> of the piston bumper <b>152</b>.
Simultaneous with the forward motion of the sleeve <b>510</b>, the inner exhaust port seal <b>512</b> slides forwardly by an equal amount to sealingly engage the outer circumference <b>910</b> of the exhaust manifold <b>422</b> at a point forward of the exhaust slots <b>470</b> to thereby prevent air from flowing to the atmosphere through the exhaust slots <b>470</b>. Pressure acts on the rear surface <b>920</b> of the piston assembly <b>502</b> to disengage the locking protrusion <b>744</b> in the second piston portion <b>732</b> from the groove <b>490</b> in the top bumper <b>424</b>. The pressure acts on the piston assembly <b>502</b> to drive the piston assembly <b>502</b> and the driver blade <b>504</b> forwardly through the first cavity portion <b>612</b> of the hollow cavity <b>610</b> in the sleeve <b>510</b>. Air in the first cavity portion <b>612</b> is compressed by the forward motion of the piston assembly <b>502</b>, causing it to be expelled from the hollow cavity <b>610</b> through the internal cavity <b>100</b> in the nose guide <b>98</b>, as well as through the front exhausting ports <b>562</b> and into a frontal air chamber <b>940</b>. The frontal air chamber <b>940</b> is defined by the first sleeve body portion <b>550</b> of the sleeve <b>510</b>, the front guide seal <b>520</b>, the guide <b>650</b>, the first housing seal <b>652</b>, the outwardly tapering wall <b>172</b> of the housing body <b>160</b>, the second annular lip portion <b>408</b> of the annular lip <b>392</b> in the piston bumper <b>152</b>, the front spring flange <b>530</b> and the front spring flange seal <b>532</b>.
The piston bumper <b>152</b> checks the forward motion of the sleeve <b>510</b>. Thereafter, the piston assembly <b>502</b> pushes the driver blade <b>504</b> forwardly so that the tip portion <b>780</b> drives a fastener F into a workpiece (not shown). With the piston bumper <b>152</b> also checks the forward motion of the piston assembly <b>502</b> and effectively seals against the front surface <b>770</b> of the piston assembly <b>502</b> to seal the frontal air chamber <b>940</b>. In this condition, the piston assembly <b>502</b> is positioned forwardly of the valve apertures <b>574</b> in the first sleeve body portion <b>550</b> of the sleeve <b>510</b>. Accordingly, if the pressure of the air in the portion of the hollow cavity <b>610</b> that is rearward of the piston assembly <b>502</b> is greater than the pressure of the air in the frontal air chamber <b>940</b>, the compensating valve <b>524</b> permits air to flow through the sleeve <b>510</b> and into the frontal air chamber <b>940</b> so as to balance the air pressure that is acting on the front and rear surfaces <b>770</b> and <b>920</b> of the piston assembly <b>502</b>. The compensating valve <b>524</b>, however, is a one-way valve that does not permit air to flow from the frontal air chamber <b>940</b> through the valve apertures <b>574</b> and into the hollow cavity <b>610</b>.
Referring back to FIGS. 10, <b>12</b>, <b>14</b> and <b>16</b>, when the state of the trigger valve <b>130</b> is changed to its unactuated state, compressed air is once again routed to the sleeve return chamber <b>850</b> where it applies a force against the front face <b>852</b> of the annular sleeve flange <b>552</b>. The balance of the forces on the sleeve <b>510</b> is such that the sleeve <b>510</b> is pushed in a rearward direction until the cap flange seal <b>516</b> sealingly engages the front face <b>866</b> of the annular exhaust port wall <b>438</b>. Air in the primary and secondary exhaust chambers <b>870</b> and <b>880</b> is then vented to the atmosphere in the manner discussed above.
The piston assembly <b>502</b>, immediately prior to the exhausting of the air in the primary and secondary exhaust chambers <b>870</b> and <b>880</b>, was such that it remained in sealed engagement with the piston bumper <b>152</b>. When the air in the primary exhaust chamber <b>870</b> is vented to the atmosphere, however, the pressure in the frontal air chamber <b>940</b> generates a force on the front surface <b>770</b> of the piston assembly <b>502</b> that exceeds the force that is acting on its rear face <b>920</b>. As mentioned above, the compensating valve <b>524</b> is a one-way valve that prevents air from flowing through the valve apertures <b>574</b> and into the hollow cavity <b>610</b> and as such, the pressure of the air to the rear of the piston assembly <b>502</b> is less than the pressure of the air in the frontal air chamber <b>940</b>. Accordingly, the pressure acting on the front surface <b>770</b> of the piston assembly <b>502</b> drives the piston assembly <b>502</b> rearwardly until the locking protrusion <b>744</b> in the second piston portion <b>732</b> engages the groove <b>490</b> in the top bumper <b>424</b>.
Those skilled in the art will understand that while the above-described configuration of the engine assembly <b>46</b> results in a relatively lighter-weight tool as compared with pneumatic fastening devices that employ a conventional head valve, the reduction in the weight of the tool <b>10</b> does not come at the expense of increased recoil that is felt by the tool operator. In this regard, the felt force that is exerted onto the cap assembly <b>44</b> when a fastener F is driven into a workpiece is counteracted by the felt force that is exerted by the sliding of the sleeve <b>510</b> in a forward direction.
Magazine Assembly
The magazine assembly <b>20</b> is shown to include a magazine body assembly <b>1000</b>, a follower structure <b>1002</b>, a follower spring <b>1004</b> and a magazine endcap assembly <b>1006</b>. The magazine body assembly <b>1000</b> includes a magazine housing <b>1010</b>, a pair of guide structures <b>1012</b><i>a </i>and <b>1012</b><i>b </i>and a coupling bracket <b>1014</b>. In the example illustrated, the magazine housing <b>1010</b> is extruded from a lightweight material, such as aluminum and includes a wall member <b>1020</b> that defines a fastener head portion <b>1022</b>, a follower housing portion <b>1024</b>, a pair of guide housing portions <b>1026</b> and a fastener body portion <b>1028</b>.
The fastener head portion <b>1022</b> is generally rectangular in shape, defining a fastener head chamber <b>1030</b> that is open at its top and bottom ends so as to permit the head portion H of the fasteners F to travel through the fastener head portion <b>1022</b>. The fastener head portion <b>1022</b> is also open along a portion of one of its sides <b>1032</b> so as to permit the follower structure <b>1002</b> to travel upwardly within the magazine housing <b>1010</b>. With additional reference to FIG. 21, a threaded fastener <b>1034</b> is threadably engaged to the wall member <b>1020</b>, forming a contact surface <b>1036</b> that checks the upward travel of the follower structure <b>1002</b>.
As shown in FIGS. 19, <b>20</b> and <b>22</b>, the follower housing portion <b>1024</b> is coupled to the forward side of the fastener head portion <b>1022</b> and defines a generally rectangular follower cavity <b>1040</b> that is sized to receive the follower structure <b>1002</b> and the follower spring <b>1004</b>. A slot <b>1042</b> is formed into the rear surface <b>1044</b> of the follower housing portion <b>1024</b>. The slot <b>1042</b> interconnects the follower cavity <b>1040</b> to the fastener head chamber <b>1030</b>. An L-shaped pin aperture <b>1050</b> is formed into a side of the follower housing portion <b>1024</b>. The L-shaped pin aperture <b>1050</b> includes a relatively narrow first portion <b>1052</b> that extends generally parallel the longitudinal axis of the follower housing portion <b>1024</b> and a second portion <b>1054</b> that is skewed to the first portion <b>1052</b>. The L-shaped pin aperture <b>1050</b> will be discussed in greater detail, below.
In FIGS. 19 and 20, each guide housing portion <b>1026</b> is shown to include a pair of spaced apart and arcuate protrusions <b>1060</b><i>a </i>and <b>1060</b><i>b </i>that are coupled to the wall member <b>1020</b>. The arcuate protrusions <b>1060</b><i>a </i>and <b>1060</b><i>b </i>cooperate with the wall member <b>1020</b> to define a guide structure cavity <b>1062</b> that extends over the length of the magazine housing <b>1010</b> and which is configured to receive one of the guide structures <b>1012</b><i>a </i>and <b>1012</b><i>b</i>. In the particular embodiment illustrated, the guide structure cavity <b>1062</b> includes a first cavity portion <b>1064</b> that is generally cylindrically shaped and located proximate the follower housing portion <b>1024</b>, and a second cavity portion <b>1066</b> that is shaped as a generally flat void that is generally tangent to the cylindrically shaped first cavity portion <b>1064</b>.
The fastener body portion <b>1028</b> is generally U-shaped, being coupled to the forward portion of the pair of guide housing portions <b>1026</b>. The fastener body portion <b>1028</b> includes a U-shaped fastener body cavity <b>1070</b> that is configured to receive the body B of the fasteners F. A plurality of oval windows <b>1072</b> are formed into the sides <b>1074</b> of the fastener body portion <b>1028</b> which permit the tool operator to monitor the quantity of fasteners F that are housed in the magazine assembly <b>20</b>, as well as to reduce the overall weight of the magazine assembly <b>20</b>.
As guide structures <b>1012</b><i>a </i>and <b>1012</b><i>b </i>are generally identical in construction, reference numerals may occasionally be shown on only of the guide structure <b>1012</b><i>a </i>and <b>1012</b><i>b</i>. Those skilled in the art will understand, however, that guide structure <b>1012</b><i>b </i>is a mirror image of guide structure <b>1012</b><i>a</i>. In the embodiment illustrated in FIGS. 19, <b>20</b> and <b>23</b>, each of the guide structures <b>1012</b><i>a </i>and <b>1012</b><i>b </i>includes a cylindrically-shaped guide port <b>1100</b>, first and second retention tabs <b>1102</b> and <b>1104</b>, respectively, an intermediate member <b>1106</b> and an end member <b>1108</b>. The guide port <b>1100</b> is generally hollow, having an outside diameter that is sized to slip fit into the first cavity portion <b>1064</b> of an associated one of the guide housing portions <b>1026</b> and an inside diameter that is to engage an associated one of the magazine guide posts <b>66</b>. The first retention tab <b>1102</b> is coupled to the guide port <b>1100</b> on one side and to the intermediate member <b>1106</b> on the opposite side. The second retention tab <b>1104</b> is coupled to the intermediate member <b>1106</b> on the side opposite the first retention tab <b>1102</b>. The intermediate member <b>1106</b> is sized to fit between the arcuate protrusions <b>1060</b><i>a </i>and <b>1060</b><i>b </i>in the guide housing portion <b>1026</b> as well as to space the first and second retention tabs <b>1102</b> and <b>1104</b> apart from one another by a predetermined distance that permits the first and second retention tabs <b>1102</b> and <b>1104</b> to engage the arcuate protrusions <b>1060</b><i>a </i>and <b>1060</b><i>b </i>when the guide structures <b>1012</b><i>a </i>and <b>1012</b><i>b </i>are inserted into the guide structure cavities <b>1062</b>. The inner surface <b>1110</b> of the second retention tab <b>1104</b> extends inwardly further toward the centerline <b>1112</b> of the magazine housing <b>1010</b> than the inside surfaces of the U-shaped fastener body cavity <b>1070</b> so as to form a wear surface <b>1114</b> against which the body B of the fastener F is permitted to rub. The end member <b>1108</b> is coupled to the end of the guide structures <b>1012</b><i>a </i>and <b>1012</b><i>b </i>opposite the end to which the guide port <b>1100</b> is coupled. The end member <b>1108</b> is configured to abut the ends of the arcuate protrusions <b>1060</b><i>a </i>and <b>1060</b><i>b </i>so as to prevent the guide structures <b>1012</b><i>a </i>and <b>1012</b><i>b </i>from moving upwardly out of the top of the magazine housing <b>1010</b>.
In FIGS. 24 and 25, the coupling bracket <b>1014</b> is shown to have a pair of threaded bushings <b>1200</b> and a bracket structure <b>1202</b> having a pair of mounting flanges <b>1204</b> and a U-shaped body portion <b>1206</b> that is coupled to one of the mounting flanges <b>1204</b> at each of its opposite ends. Each of the threaded bushings <b>1200</b> is coupled to one of the mounting flanges <b>1204</b>. The mounting flanges <b>1204</b> abut the side of the follower housing portion <b>1024</b> and threaded fasteners <b>1210</b> (FIG. 2) are employed to engage the threaded bushings <b>1200</b> to fixedly but removably couple the coupling bracket <b>1014</b> to the magazine housing <b>1010</b>.
The U-shaped body portion <b>1206</b> includes a base <b>1220</b> and a plurality of legs <b>1222</b>, with each of the legs <b>1222</b> coupling a side of the base <b>1220</b> to an associated one of the mounting flanges <b>1204</b>. The base <b>1220</b> includes a slotted pin aperture <b>1230</b> that includes a circular portion <b>1232</b>, a slotted portion <b>1234</b> that is spaced apart from the circular portion <b>1232</b>, and a necked-down slotted portion <b>1236</b> having a width that is smaller than that of the slotted portion <b>1234</b> and which interconnects the circular and slotted portions <b>1232</b> and <b>1234</b>. The circular portion <b>1232</b> is sized to receive the head portion <b>322</b> of the clamp pin <b>300</b>, the slotted portion <b>1234</b> is sized to slidingly receive the first body section <b>324</b> of the clamp pin <b>300</b>, and the necked-down slotted portion <b>1236</b> is sized to receive the second body section <b>326</b> of the clamp pin <b>300</b> but not the first body section <b>324</b>. With specific reference to FIG. 25, the back side of the base <b>1220</b> is illustrated in pertinent detail. The end of the slotted portion <b>1234</b> is shown to include a conical detent <b>1238</b> which is configured to confront the frusto-conical abutting face <b>330</b> of the head portion <b>322</b> of the clamp pin <b>300</b>.
With reference to FIGS. 19, <b>20</b> and <b>27</b> through <b>32</b>, the follower structure <b>1002</b> is illustrated to have a follower body <b>1300</b>, a front guide tab <b>1302</b>, a lock-out dog <b>1304</b>, a loading cam <b>1306</b>, a follower guide <b>1308</b> and an actuating lever <b>1310</b>. The follower body <b>1300</b> is generally U-shaped, having a base <b>1320</b> and a pair of follower legs <b>1322</b><i>a </i>and <b>1322</b><i>b</i>. The lock-out dog <b>1304</b> extends upwardly from the base <b>1320</b> in a direction opposite that of the follower legs <b>1322</b><i>a </i>and <b>1322</b><i>b</i>. The front guide tab <b>1302</b> is also coupled to the base <b>1320</b> but extends upwardly and forwardly therefrom in the same plane as the base <b>1320</b>. Accordingly, when the follower structure <b>1002</b> is installed to the magazine housing <b>1010</b>, the front guide tab <b>1302</b> extends forwardly from the follower housing portion <b>1024</b>, past the pair of guide housing portions <b>1026</b> and into the fastener body portion <b>1028</b> where the U-shaped tip portion <b>1330</b> of the front guide tab <b>1302</b> supports the body B of the fasteners F.
The loading cam <b>1306</b> is formed into follower leg <b>1322</b><i>a </i>and includes a first loading cam portion <b>1350</b>, a second loading cam portion <b>1352</b> and an unloading cam portion <b>1354</b>. The first loading cam portion <b>1350</b> is a tapered ramp that extends outwardly and upwardly from the distal end of the follower leg <b>1322</b><i>a</i>. The second loading cam portion <b>1352</b> includes an oval follower capturing portion <b>1360</b>, a downwardly and forwardly extending intermediate portion <b>1362</b> and a forwardly and upwardly extending catch portion <b>1364</b> and a catch aperture <b>1368</b> that is formed at the lower-most portion of the catch portion <b>1364</b>. The follower capturing portion <b>1360</b> and the intermediate portion <b>1362</b> are formed into a first side of the follower leg <b>1322</b><i>a </i>at a first depth, and the catch portion <b>1364</b> is formed into the first side of the follower leg <b>1322</b><i>a </i>at a second depth that is greater than the first depth. The unloading cam portion <b>1354</b> is a generally flat portion of the front surface <b>1370</b> of the follower leg <b>1322</b><i>a. </i>
The follower guide <b>1308</b> is formed onto the outside surface of follower leg <b>1322</b><i>b</i>. The follower guide <b>1308</b> includes a V-shaped flange <b>1380</b>, an end member <b>1382</b> and a connector portion <b>1384</b> that couples the V-shaped flange <b>1380</b> and the end member <b>1382</b>. The connector portion <b>1384</b> is configured to fit into the slot <b>1042</b> in the follower housing portion <b>1024</b> such that the V-shaped flange <b>1380</b> and the end member <b>1382</b> confront the rear inside surface <b>1044</b> and the rear outside surface <b>1388</b>, respectively, of the follower housing portion <b>1024</b>.
The actuating lever <b>1310</b> extends outwardly from the end member <b>1382</b> and thereafter bends inwardly toward the follower legs <b>1322</b><i>a </i>and <b>1322</b><i>b</i>. The distal end of the actuating lever <b>1310</b> forms an engagement surface <b>1390</b> that is configured for receiving an input from the tool operator's thumb. A protrusion <b>1392</b> that is configured to contact the contact surface <b>1036</b> in the fastener head portion <b>1022</b> is also formed onto the actuating lever <b>1310</b>.
With reference to FIGS. 19, <b>20</b>, <b>29</b>, <b>30</b> and <b>33</b>, the follower spring <b>1004</b> is illustrated to include a spring hook <b>1400</b>, a coiled, flat band spring <b>1402</b>, a cylindrically-shaped spring roller body <b>1404</b> and a spring roller pin <b>1406</b>. The spring roller pin <b>1406</b> extends through and rotatably supports the spring roller body <b>1404</b>. The band spring <b>1402</b> is a type of torsion spring, being coupled to and wound around the spring roller body <b>1404</b>. The free end of the band spring <b>1402</b> is coupled to the spring hook <b>1400</b>. Each end of the spring roller pin <b>1406</b> is set into a generally U-shaped spring roller slot <b>1410</b> that is formed into each inside surface of the follower legs <b>1322</b><i>a </i>and <b>1322</b><i>b </i>to couple the follower spring <b>1004</b> to the follower structure <b>1002</b>.
When the follower structure <b>1002</b> is disposed within the follower housing portion <b>1024</b>, the band spring <b>1402</b> is unwound to permit the C-shaped spring hook <b>1400</b> to be engaged to the side of the follower housing portion <b>1024</b> opposite the side in which the L-shaped pin aperture <b>1050</b> is formed. The torsion exerted by the band spring <b>1402</b> is converted to a force that is exerted through the spring roller pin <b>1406</b> to the follower structure <b>1002</b>, thereby biasing the follower structure <b>1002</b> in an upward direction toward the spring hook <b>1400</b>.
In the particular embodiment illustrated in FIGS. 1, <b>19</b> and <b>35</b> through <b>45</b>, the magazine endcap assembly <b>1006</b> includes a molded end cap structure <b>1600</b>, a crush tube <b>1602</b>, a pivot structure <b>1604</b>, a cam follower <b>1606</b>, a cam follower spring <b>1608</b> and a thrust member <b>1610</b>. The end cap structure <b>1600</b> is configured to mate against the bottom of the magazine housing <b>1010</b> to close off the follower housing portion <b>1024</b> and the fastener body portion <b>1028</b>.
The end cap structure <b>1600</b> includes a bushing trunnion <b>1620</b> for receiving the crush tube <b>1602</b>, a fastener trunnion <b>1622</b> for receiving a fastener <b>1623</b><i>a </i>(FIG. 1) that couples the nose <b>1623</b><i>b </i>of the end cap structure <b>1600</b> to the fastener body portion <b>1028</b> and a pair of pivot trunnions <b>1624</b> for receiving the pivot structure <b>1604</b>, which is illustrated to be a threaded fastener <b>1626</b> that is secured to the end cap structure <b>1600</b> via a threaded nut <b>1628</b> in the example provided. The crush tube <b>1602</b>, which is retained by the bushing trunnion <b>1620</b>, prevents the end cap structure <b>1600</b> form being overstressed as well as the follower housing portion <b>1024</b> from being deformed as a result of the clamping force that is exerted by the threaded fastener <b>1630</b> (FIG. 1) that couples the end cap structure <b>1600</b> to the follower housing portion <b>1024</b>.
The end cap structure <b>1600</b> also includes a follower directing wall <b>1640</b>, a thrust flange <b>1642</b> and a spring flange <b>1644</b>. The follower directing wall <b>1640</b> extends upwardly from the base <b>1646</b> of the end cap structure <b>1600</b> and includes a ramped portion <b>1650</b>, which tapers outwardly and downwardly from the top end <b>1652</b> of the follower directing wall <b>1640</b>, and a generally flat portion <b>1654</b> that interconnects the ramped portion <b>1650</b> to the base <b>1646</b> of the end cap structure <b>1600</b>. The spring flange <b>1644</b> is located proximate one of the pivot trunnions <b>1624</b>, extending upwardly from the base <b>1646</b> of the end cap structure <b>1600</b> behind one of the pivot trunnions <b>1624</b>. The thrust flange <b>1642</b> is located between the spring flange <b>1644</b> and the follower directing wall <b>1640</b> and includes a first U-shaped aperture <b>1660</b> that is configured to receive the pivot structure <b>1604</b> and a second U-shaped aperture <b>1662</b> that is configured to receive the hollow thrust member <b>1610</b>.
In the particular embodiment illustrated, the cam follower <b>1606</b> includes a lever <b>1670</b> and a follower hook <b>1672</b>. The lever <b>1670</b> includes a slotted pivot aperture <b>1680</b> that is sized to receive and rotate as well as pivot in a lateral (side-to-side) direction on a portion of the pivot structure <b>1604</b>. The lever <b>1670</b> extends beyond the slotted pivot aperture <b>1680</b> to form a spring follower hook <b>1672</b> that can be employed during the assembly of the magazine endcap assembly <b>1006</b>. The follower hook <b>1672</b> includes a cylindrical body portion <b>1690</b> that is coupled to the distal end of the lever <b>1670</b> and a leg member <b>1692</b> that is coupled to the outer end of the body portion <b>1690</b> and which extends downwardly from the body portion <b>1690</b> generally parallel to the lever <b>1670</b>. The outside face <b>1694</b> of the leg member <b>1692</b> is heavily chamfered such that the leg member <b>1692</b> terminates at a rounded tip portion <b>1696</b>. The intersection between the body portion <b>1690</b> and the leg member <b>1692</b> is undercut by a radius <b>1698</b>.
The cam follower spring <b>1608</b> is illustrated to be a combination compression and torsion spring having a spring body <b>1700</b> that wraps around a portion of the pivot structure <b>1604</b>, a bent end <b>1702</b> for contacting the front face of the lever <b>1670</b> and a straight end <b>1704</b> for contacting the spring flange <b>1644</b>. The cam follower spring <b>1608</b> is operable for exerting a rotational biasing force onto the cam follower <b>1606</b> which biases the cam follower <b>1606</b> toward the rear of the tool <b>10</b>. The cam follower spring <b>1608</b> is also operable for exerting a lateral force onto the cam follower <b>1606</b> which biases the cam follower <b>1606</b> toward the thrust member <b>1610</b>.
The pivot structure <b>1604</b> is positioned through the pivot trunnion <b>1624</b> that is adjacent the spring flange <b>1644</b>. The cam follower spring <b>1608</b> is positioned over a portion of the pivot structure <b>1604</b> such that the straight end <b>1704</b> is in contact with the spring flange <b>1644</b>. The cam follower <b>1606</b> is positioned into the end cap structure <b>1600</b> such that the lever <b>1670</b> will contact the thrust member <b>1610</b> and the follower hook <b>1672</b> will be proximate the follower directing wall <b>1640</b>. The spring follower hook <b>1672</b> of the cam follower <b>1606</b> is employed to lift the bent end <b>1702</b> of the cam follower spring <b>1608</b> onto the lever <b>1670</b>. The pivot structure <b>1604</b> is then pushed through the slotted pivot aperture <b>1680</b>. The hollow thrust member <b>1610</b>, which is a washer in the embodiment illustrated, is positioned in the second U-shaped aperture <b>1662</b> in the thrust flange <b>1642</b> and the pivot structure <b>1604</b> is pushed entirely through the end cap structure <b>1600</b> and secured in place with the threaded nut <b>1628</b>.
With additional reference to FIGS. 27, <b>31</b> and <b>32</b>, when fasteners F are to be loaded into the magazine assembly <b>20</b>, the tool operator presses the engagement surface <b>1390</b> of the actuating lever <b>1310</b> to move the follower structure <b>1002</b> downward toward the end cap structure <b>1600</b>. The ramped portion <b>1650</b> of the follower directing wall <b>1640</b> directs the follower leg <b>1322</b><i>a </i>of the follower structure <b>1002</b> toward the cam follower <b>1606</b> and the flat portion <b>1654</b> of the follower directing wall <b>1640</b> ensure that proper contact is established and maintained between the loading cam <b>1306</b> and the cam follower <b>1606</b>.
When the first loading cam portion <b>1350</b> of the loading cam <b>1306</b> contacts the leg member <b>1692</b> of the follower hook <b>1672</b> on the cam follower <b>1606</b>, the ramp of the first loading cam portion <b>1350</b> pushes the follower hook <b>1672</b> in a side-to-side motion along the axis of the pivot structure <b>1604</b> in the direction of Arrow R (FIG. <b>43</b>), permitting the leg member <b>1692</b> to travel over the first loading cam portion <b>1350</b> and into the oval follower capturing portion <b>1360</b> of the second loading cam portion <b>1352</b> of the loading cam <b>1306</b>. With the leg member <b>1692</b> being positioned in the oval follower capturing portion <b>1360</b>, the follower structure <b>1002</b> cannot be moved further down the magazine housing <b>1010</b>. When pressure on the engagement surface <b>1390</b> of the actuating lever <b>1310</b> is released, the force generated by the follower spring <b>1004</b> is employed to lift the follower structure <b>1002</b> within the magazine housing <b>1010</b> so as to simultaneously cause the cam follower <b>1606</b> to pivot about the axis of the pivot structure <b>1604</b>, thereby permitting the leg member <b>1692</b> to travel through the intermediate portion <b>1362</b> and into the catch portion <b>1364</b> of the second loading cam portion <b>1352</b> of the loading cam <b>1306</b>. When the leg member <b>1692</b> is positioned in the catch portion <b>1364</b> of the loading cam <b>1306</b>, the leg member <b>1692</b> extends through the catch aperture <b>1368</b> and around the follower leg <b>1322</b><i>a </i>of the follower structure <b>1002</b> as illustrated in FIG. 32<i>a</i>, thereby securely coupling the cam follower <b>1606</b> to the follower structure <b>1002</b> and inhibiting upward travel of the follower structure <b>1002</b> within the magazine housing <b>1010</b>. In this condition, fasteners F may be readily loaded into the magazine assembly <b>20</b>.
If the magazine assembly <b>20</b> is not already coupled to the fastening tool portion <b>30</b>, this operation is performed next. This is accomplished by positioning the top end of the magazine assembly <b>20</b> relative to the nose assembly <b>40</b> such that the holes in the guide ports <b>1100</b> are proximate an associated one of the magazine guide posts <b>66</b>, the stop member <b>134</b> on the trigger lever <b>54</b> is positioned directly above the first portion <b>1052</b> of the L-shaped pin aperture <b>1050</b>, and the head portion <b>322</b> of the clamp pin <b>300</b> is engaged to the circular portion <b>1232</b> of the slotted pin aperture <b>1230</b> in the base <b>1220</b> of the bracket structure <b>1202</b>. The actuating cam <b>306</b> is then pushed toward the clamp boss <b>252</b> to compress the compression spring <b>302</b> and extend the clamp pin <b>300</b> in an outward direction so that the second body section <b>326</b> of the clamp pin <b>300</b> extends through the slotted pin aperture <b>1230</b>. With the clamp pin <b>300</b> in this condition, the magazine assembly <b>20</b> is slid upwardly until the clamp pin <b>300</b> is fully positioned into the slotted portion <b>1234</b> of the slotted pin aperture <b>1230</b>. Simultaneously, the guide ports <b>1100</b> are slid further onto the magazine guide posts <b>66</b> so that the top of the magazine assembly <b>20</b> cannot pivot relative to the nose assembly <b>40</b> and the stop member <b>134</b> on the trigger lever <b>54</b> is disposed in the second portion <b>1054</b> of the L-shaped pin aperture <b>1050</b>.
Thereafter, the tool operator releases the actuating cam <b>306</b>, causing the compression spring <b>302</b> to retract the clamp pin <b>300</b> somewhat so that the first body section <b>324</b> of the clamp pin <b>300</b> is disposed within the slotted portion <b>1234</b> of the slotted pin aperture <b>1230</b>. In this condition, the parallel flats <b>328</b> that are formed onto the first body section <b>324</b> abut the parallel sides of the slotted portion <b>1234</b> of the slotted pin aperture <b>1230</b>, thereby permitting the magazine assembly <b>20</b> to be slid along an axis defined by the magazine guide posts <b>66</b> and the slotted portion <b>1234</b> of the slotted pin aperture <b>1230</b>. The magazine assembly <b>20</b> is pushed upwardly into contact with the magazine flange <b>64</b> that is formed into the nose structure <b>50</b>. The actuating cam <b>306</b> is then pivoted to place the leg portion <b>352</b> in contact with the flat contact surface <b>344</b>. More specifically, the frusto-conical abutting face <b>330</b> of the head portion <b>322</b> of the clamp pin <b>300</b> engages the conical detent <b>1238</b> that is formed into the end of the slotted portion <b>1234</b> to both locate the magazine assembly <b>20</b> relative to the tool portion <b>30</b> as well as to mechanically lock the clamp pin <b>300</b> to the coupling bracket <b>1014</b>.
In this condition, the compression spring <b>302</b> exerts a clamping force that is transmitted through the clamp pin <b>300</b> to fixedly but removably couple the coupling bracket <b>1014</b> to the clamp boss <b>252</b>. The magazine stabilizing tabs <b>62</b> extend downwardly from the magazine flange <b>64</b> and abut the opposite sides of the fastener body portion <b>1028</b> of the magazine housing <b>1010</b> to inhibit excessive rotation of the magazine assembly <b>20</b> relative to the nose assembly <b>40</b>.
With the magazine assembly <b>20</b> attached, the fasteners F are fed into the magazine assembly <b>20</b> such that the body B of the fasteners F enter the follower cavity <b>1040</b> via the slot <b>1042</b>. Typically, the fasteners F are collated (usually at an angle of 20° or 31°) in “sticks”, which permits the magazine assembly <b>20</b> to be loaded relatively rapidly.
The follower structure <b>1002</b> is released from the cam follower <b>1606</b> by pressing downwardly on the engagement surface <b>1390</b> of the actuating lever <b>1310</b>. The body portion <b>1690</b> of the follower hook <b>1672</b> rides on the upper surface of the forwardly and upwardly extending catch portion <b>1364</b>, causing the cam follower <b>1606</b> to rotate forwardly. The simultaneous downward movement of the follower structure <b>1002</b> and the forward rotation of the cam follower <b>1606</b> continues until the leg member <b>1692</b> slips out of the catch portion <b>1364</b> and the body portion <b>1690</b> of the follower hook <b>1672</b> slides onto the unloading cam portion <b>1354</b> of the loading cam <b>1306</b>. As the leg member <b>1692</b> of the follower hook <b>1672</b> is not contacting the side of the leg <b>1322</b><i>a </i>of the follower structure <b>1002</b>, the follower spring <b>1004</b> exerts a force against the lever <b>1670</b> that pushes the follower hook <b>1672</b> in a side-to-side motion so that the lever <b>1670</b> abuts the thrust member <b>1610</b>. With the body <b>1690</b> of the follower hook <b>1672</b> engaged against the unloading cam portion <b>1354</b> of the loading cam <b>1306</b>, the body <b>1690</b> of the follower hook <b>1672</b> prevents the cam follower <b>1606</b> from engaging the follower structure <b>1002</b> and the upward motion of the follower structure <b>1002</b> is controlled by the follower spring <b>1004</b>. The upward movement of the follower structure <b>1002</b> brings the tip portion <b>1330</b> of the front guide tab <b>1302</b> into contact with the bottom-most fastener F in the magazine assembly <b>20</b> which urges the fasteners F upwardly and into the nose assembly <b>40</b>. The force exerted by the follower structure <b>1002</b> onto the fasteners F, along with the configuration of the fastener head portion <b>1022</b>, ensures that fasteners F will not slip rearwardly out of the magazine assembly <b>20</b> during the operation of the tool <b>10</b>.
As discussed above, the tool operator must push the contact trip <b>52</b> against the workpiece to cause the trigger lever <b>54</b> to push the secondary trigger <b>128</b> in to contact with the trigger valve <b>130</b> to permit the state of the trigger valve <b>130</b> to be changed. With the magazine assembly <b>20</b> fully engaged against the magazine flange <b>64</b>, the stop member <b>134</b> on the trigger lever <b>54</b> is free to move in a direction parallel to the longitudinal axis of the tool <b>10</b> (i.e., rearwardly-forwardly) within the second portion <b>1054</b> of the L-shaped pin aperture <b>1050</b>.
In the event of a “jam” condition wherein fasteners F have not fed properly through the nose assembly <b>40</b>, the tool operator need only rotate the actuating cam <b>306</b> such that its base portion <b>350</b> is abutted against the flat contact surface <b>344</b> to release the clamping force that is exerted through the clamp pin <b>300</b>. The magazine assembly <b>20</b> may then be slid downwardly from the magazine flange <b>64</b> to permit the tool operator to service the nose assembly <b>40</b>. The magazine assembly <b>20</b>, however, is constrained by the magazine guide posts <b>66</b> and the clamp pin <b>300</b> so that it can only move in a predetermined linear direction. The predetermined linear direction is cooperatively defined by the magazine guide posts <b>66</b>, which remain engaged in the holes <b>1800</b> in the guide ports <b>1100</b>, and the first body section <b>324</b> of the clamp pin <b>300</b>, which remains engaged in the slotted portion <b>1234</b> of the slotted pin aperture <b>1230</b>. Downward movement of the magazine assembly <b>20</b> is checked when the first body section <b>324</b> of the clamp pin <b>300</b> contacts the necked-down slotted portion <b>1236</b> of the slotted pin aperture <b>1230</b>. Accordingly, the nose assembly <b>40</b> may be serviced without completely removing the magazine assembly <b>20</b> from the magazine flange <b>64</b>. Furthermore, when the magazine assembly <b>20</b> is moved downwardly into this condition, the stop member <b>134</b> is moved out of the second portion <b>1054</b> of the L-shaped pin aperture <b>1050</b> and into the first portion <b>1052</b> of the L-shaped pin aperture <b>1050</b>. With the stop member <b>134</b> located in this manner, rearward motion of the contact trip <b>52</b> relative to the nose body <b>60</b> is limited such that the stop member <b>134</b> contacts the rearward edge <b>1820</b> of the first portion <b>1052</b> of the L-shaped pin aperture <b>1050</b>, thereby preventing the trigger lever <b>54</b> from pushing the secondary trigger <b>128</b> sufficiently rearward so that the state of the trigger valve <b>130</b> cannot be changed (i.e., actuated). Accordingly, the stop member <b>134</b> and the L-shaped pin aperture <b>1050</b> cooperate to selectively prevent the trigger valve <b>130</b> from being actuated depending upon the position of the magazine assembly <b>20</b> relative to the magazine flange <b>64</b>.
Those skilled in the art will understand that as fasteners F are dispensed from the tool <b>10</b>, the follower spring <b>1004</b> will force the follower structure <b>1002</b> in an upwardly direction so as to continue to feed fasteners F into the nose body <b>60</b>. When the magazine assembly <b>20</b> is empty of fasteners F, the follower structure <b>1002</b> will be raised within the magazine housing <b>1010</b> to a point wherein the lock-out dog <b>1304</b> extends through the lock-out dog aperture <b>90</b> that is formed into the magazine flange <b>64</b> so that it inhibits sufficient rearward motion of the contact trip <b>52</b> so as to prevent the trigger lever <b>54</b> from changing the state of the trigger valve <b>130</b>. Accordingly, the lock-out dog <b>1304</b> inhibits the tool <b>10</b> from cycling when the magazine assembly <b>20</b> is empty of fasteners F and coupled to the magazine flange <b>64</b>.
In an alternate embodiment of the present invention illustrated in FIGS. 46 and 47, the nose assembly <b>40</b> includes a pivoting lock-out tab <b>2000</b> that is rotatably coupled to the nose structure <b>50</b> and pivotable between a first position, which is illustrated in FIG. 47, that permits the contact trip <b>52</b> to move rearwardly a sufficient amount that permits the trigger lever <b>54</b> to change the state of the trigger valve <b>130</b>, and a second position, which is shown in FIG. 46, that inhibits rearward motion of the contact trip <b>52</b> by an amount wherein the trigger lever <b>54</b> cannot change the state of the trigger valve <b>130</b>. As illustrated in FIG. 47, when the magazine assembly <b>20</b> abuts the magazine flange <b>64</b>, the top surface <b>2010</b> of the magazine housing <b>1010</b> contacts the lock-out tab <b>2000</b> and rotates it into the first position. When the magazine assembly <b>20</b> is not abutted against the magazine flange <b>64</b> as illustrated in FIG. 46, however, the lock-out tab <b>2000</b> is rotated by a torsion spring (not specifically shown) into the second position to prevent the tool <b>10</b> from being cycled.
Those skilled in the art will understand that the configuration of the slotted pin aperture and the clamp pin may be somewhat different from that which is shown in FIGS. 9<i>b </i>and <b>24</b>. For example, the clamp pin and the slotted pin aperture may be formed as is illustrated in FIGS. 48 and 49, respectively. In this embodiment, the clamp pin <b>300</b>′ is substantially identical to the clamp pin <b>300</b> except for the omission of the parallel flats <b>328</b> from the first body section <b>324</b>′.
The configuration of the slotted pin aperture <b>1230</b>′, however, is substantially different from the configuration of the slotted pin aperture <b>1230</b>. In this regard, the slotted pin aperture <b>1230</b>′ includes a circular portion <b>1232</b>′, which is sized to receive the head <b>322</b>′ of the clamp pin <b>300</b>′ therethrough, and a slotted portion <b>1234</b>′, which has a body portion <b>1234</b><i>a </i>with a first end <b>1234</b><i>b </i>and a second end <b>1234</b><i>c</i>. The first end <b>1234</b><i>b </i>interconnects the body portion <b>1234</b><i>a </i>to the circular portion <b>1232</b>′ in a dog-legged manner. In this regard, the first end <b>1234</b><i>b </i>defines a protrusion <b>1234</b><i>d </i>that necessitates that the coupling bracket <b>1014</b>′ and the clamp pin <b>300</b>′ be moved laterally relative to one another to permit the clamp pin <b>300</b>′ to move around the protrusion <b>1234</b><i>d </i>and into the circular portion <b>1232</b>′. The first end <b>1234</b><i>b </i>and the protrusion <b>1234</b><i>d </i>may be sized so as to permit the first body section <b>324</b>′ of clamp pin <b>300</b>′ to pass around the dog-leg and into the circular portion <b>1232</b>′, or, as is presently preferred may be sized to allow only permit the second body section <b>326</b>′ of the clamp pin <b>300</b>′ to pass around the dog-leg and into the circular portion <b>1232</b>′. The second end <b>1234</b><i>c </i>of the body portion <b>1234</b><i>a </i>is similar in configuration to the end of the slotted portion <b>1234</b>, in that it includes a conical detent <b>1238</b>. The second end <b>1234</b><i>c</i>, however, defines one or more protrusions <b>1234</b><i>e </i>which are relatively narrower than the body portion <b>1234</b><i>a </i>so as to admit therethrough only the second body section <b>326</b>′ of the clamp pin <b>300</b>′.
This alternate construction of the clamp pin <b>300</b>′ and the coupling bracket <b>1014</b>′ is advantageous in that it simplifies the construction of the clamp pin <b>300</b>′ (relative to the clamp pin <b>300</b>), and renders the connection between the clamp pin <b>300</b>′ and the coupling bracket <b>1014</b>′ more secure.
While the invention has been described in the specification and illustrated in the drawings with reference to a preferred embodiment, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention as defined in the claims. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment illustrated by the drawings and described in the specification as the best mode presently contemplated for carrying out this invention, but that the invention will include any embodiments falling within the foregoing description and the appended claims.
Contents6
27 sheets
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| US3858781A | Cites | United States of America | Applicant |
| US4197974A | Cites | United States of America | Applicant |
| US4378084A | Cites | United States of America | Applicant |
| US4466555A | Cites | United States of America | Applicant |
| US4474492A | Cites | United States of America | Applicant |
| US4549681A | Cites | United States of America | Applicant |
| US4597517A | Cites | United States of America | Applicant |
| US4624401A | Cites | United States of America | Applicant |
| US4658687A | Cites | United States of America | Applicant |
| US4671443A | Cites | United States of America | Applicant |
| US4913331A | Cites | United States of America | Applicant |
| US5167359A | Cites | United States of America | Applicant |
| US5186208A | Cites | United States of America | Applicant |
| US5263842A | Cites | United States of America | Applicant |
| US5433367A | Cites | United States of America | Applicant |
| US5580066A | Cites | United States of America | Applicant |
| US5720422A | Cites | United States of America | Applicant |
| US5785228A | Cites | United States of America | Applicant |
| US5975399A | Cites | United States of America | Applicant |
| US5975822A | Cites | United States of America | Applicant |
| US6012622A | Cites | United States of America | Applicant |
| US6056181A | Cites | United States of America | Search report |
| US6199739B1 | Cites | United States of America | Search report |
| US6290115B1 | Cites | United States of America | Search report |
| US6296167B1 | Cites | United States of America | Search report |
| DE811464C | Cites | Germany | Applicant |
| DE819214C | Cites | Germany | Applicant |
| DE8703691U1 | Cites | Germany | Applicant |
| DE9100418U1 | Cites | Germany | Applicant |
20 members in 3 offices
Priority claims10
| Document | Office | Kind | Date |
|---|---|---|---|
| 26735901 | United States of America | P | |
| 26735901 | United States of America | P | |
| 7260302 | United States of America | A | |
| 7260302 | United States of America | A | |
| 13478402 | United States of America | A | |
| 10072603 | – | – | – |
| 60267359 | – | – | – |
| US20010267359P | – | – | – |
| US20020072603 | – | – | – |
| US20020134784 | – | – | – |
Members20
| Document | Office | Kind | |
|---|---|---|---|
| US2002104866A1 | United States of America | A1 | |
| US2002104868A1 | United States of America | A1 | |
| EP1231029A2 | European Patent Office (EPO) | A2 | |
| EP1231030A2 | European Patent Office (EPO) | A2 | |
| US2002117532A1 | United States of America | A1 | |
| US6609646B2 | United States of America | B2 | |
| US2003192931A1 | United States of America | A1 | |
| WO03092961A1 | World Intellectual Property Organization (WIPO) | A1 | |
| US6648202B2 | United States of America | B2 | |
| US6679413B2This record | United States of America | B2 | |
| US2004020966A1 | United States of America | A1 | |
| US6772931B2 | United States of America | B2 | |
| EP1499478A1 | European Patent Office (EPO) | A1 | |
| US2005092806A1 | United States of America | A1 | |
| US6938812B2 | United States of America | B2 | |
| US7185712B2 | United States of America | B2 | |
| US2007079978A1 | United States of America | A1 | |
| EP1499478A4 | European Patent Office (EPO) | A4 | |
| US7527106B2 | United States of America | B2 | |
| EP1499478B1 | European Patent Office (EPO) | B1 |
23 transactions on the USPTO file
Allowed without a rejection on record.
- Non-final rejections
- 0
- Final rejections
- 0
- RCEs
- 0
- Appeals
- 0
Over time
Point at a mark for the transactionTransactions
| Event | Code | |
|---|---|---|
| Expire PatentEXP. | EXP. | |
| Recordation of Patent Grant MailedPGM/ | PGM/ | |
| Patent Issue Date Used in PTA CalculationAllowedPTAC | PTAC | |
| Issue Notification MailedAllowedWPIR | WPIR | |
| Receipt into PubsR1021 | R1021 | |
| Application Is Considered Ready for IssuePILS | PILS | |
| Issue Fee Payment VerifiedN084 | N084 | |
| Issue Fee Payment ReceivedIFEE | IFEE | |
| Receipt into PubsR1021 | R1021 | |
| Receipt into PubsR1021 | R1021 | |
| Receipt into PubsR1021 | R1021 | |
| Workflow - File Sent to ContractorSENT | SENT | |
| Receipt into PubsR1021 | R1021 | |
| Dispatch to PublicationsD1220 | D1220 | |
| Mail Notice of AllowanceAllowedMN/=. | MN/=. | |
| Notice of Allowance Data Verification CompletedAllowedN/=. | N/=. | |
| Case Docketed to Examiner in GAUDOCK | DOCK | |
| Application Dispatched from OIPEOIPE | OIPE | |
| Application Is Now CompleteCOMP | COMP | |
| IFW Scan & PACR Auto Security Review | – | |
| Workflow - Drawings FinishedDRWF | DRWF | |
| Workflow - Drawings Matched with File at ContractorDRWM | DRWM | |
| Initial Exam Team nnIEXX | IEXX |
9 legal events, as the office reported them to INPADOC
Over the term
Point at a mark for the eventEvents
| Event | Code | |
|---|---|---|
| Lapsed due to failure to pay maintenance feeLapsedFP | FP | |
| Information on status: patent discontinuationPATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362STCH | STCH | |
| Information on status: patent discontinuationPATENT EXPIRED DUE TO NONPAYMENT OF MAINTENANCE FEES UNDER 37 CFR 1.362STCH | STCH | |
| Lapse for failure to pay maintenance feesLapsedLAPS | LAPS | |
| Maintenance fee reminder mailedREMI | REMI | |
| Fee paymentFPAY | FPAY | |
| Fee paymentFPAY | FPAY | |
| Fee payment procedurePAYOR NUMBER ASSIGNED (ORIGINAL EVENT CODE: ASPN); ENTITY STATUS OF PATENT OWNER: LARGE ENTITYFEPP | FEPP | |
| AssignmentAS | AS |
Numbers
- Publication, DOCDB
- 6679413
- Publication, EPODOC
- US6679413
- Application
- 10134784
- Application, DOCDB
- 13478402
- Application, EPODOC
- US20020134784
Titles
- English
- Magazine assembly for fastening tool
Patent term adjustment
- A delay
- +57 daysthe office missed an examination deadline
- Net adjustment
- 57 days
Classification
- CPC, 4
- B25C1/008
- B25C1/005
- B25C1/045
- B25C1/046
- IPC, 2
- B25C1 00
- B25C1 04
- USPC, 3
- 227120000
- 227130000
- 227136000